WO2020175965A1 - 인트라 예측 기반 비디오 신호 처리 방법 및 장치 - Google Patents
인트라 예측 기반 비디오 신호 처리 방법 및 장치 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/60—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding
- H04N19/61—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding in combination with predictive coding
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/10—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
- H04N19/102—Methods 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
- H04N19/103—Selection of coding mode or of prediction mode
- H04N19/105—Selection of the reference unit for prediction within a chosen coding or prediction mode, e.g. adaptive choice of position and number of pixels used for prediction
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/10—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
- H04N19/102—Methods 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
- H04N19/117—Filters, e.g. for pre-processing or post-processing
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/10—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
- H04N19/102—Methods 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
- H04N19/119—Adaptive subdivision aspects, e.g. subdivision of a picture into rectangular or non-rectangular coding blocks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/10—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
- H04N19/134—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or criterion affecting or controlling the adaptive coding
- H04N19/157—Assigned coding mode, i.e. the coding mode being predefined or preselected to be further used for selection of another element or parameter
- H04N19/159—Prediction type, e.g. intra-frame, inter-frame or bidirectional frame prediction
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/10—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
- H04N19/169—Methods 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
- H04N19/17—Methods 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
- H04N19/176—Methods 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
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/50—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
- H04N19/593—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding involving spatial prediction techniques
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N19/00—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
- H04N19/70—Methods or arrangements for coding, decoding, compressing or decompressing digital video signals characterised by syntax aspects related to video coding, e.g. related to compression standards
Definitions
- the present invention relates to a video signal processing method and apparatus, and more particularly, to a video signal processing method and apparatus for encoding or decoding a video signal based on intra prediction.
- Compression encoding refers to a series of signal processing technologies for transmitting digitized information through a communication line or storing it in a form suitable for a storage medium.
- Objects such as audio, video, and text are present in the object of compression encoding.
- the technique of performing compression encoding for an image is called video image compression.
- Compression encoding for video signals is performed by removing excess information in consideration of spatial correlation, temporal correlation, and probability correlation.
- more and more efficient video signal processing methods and devices are required.
- the purpose of the present invention is to increase the coding efficiency of video signals.
- the present invention is a unit in which Intra sub-partitions are applied, i.e., PDPC (position- Dependent intra prediction combination) and LFNST (Low-Frequency Non-Separable Transform) are proposed.
- PDPC position- Dependent intra prediction combination
- LFNST Low-Frequency Non-Separable Transform
- the present invention provides the following video signal processing apparatus and video signal processing method.
- ISP mode is applied to the current block. If applicable, dividing the current block into a plurality of horizontal or vertical rectangular transform blocks; generating prediction blocks of the transform blocks by performing intra prediction for each of the transform blocks; And Including the step of restoring the current block based on the residual block of the block and the prediction block, wherein the step of generating the prediction block, in units of transform blocks divided from the current block
- It may include performing position-dependent intra prediction sample filtering, i.e., position-dependent intra prediction sample filtering.
- the position-dependent intra prediction sample filtering is applied based on at least one of the width and height of the transform block.
- the determining step when the width of the transform block is greater than or equal to a preset reference value, and, when the height of the transform block is greater than or equal to the preset reference value, it is determined to apply the position-dependent intra prediction sampling filtering. Can be done.
- the residual block of the transform block is a second difference in units of the transform block.
- the step of determining whether a quadratic transformation is applied to the current block When the quadratic transformation is applied to the current block, inducing a quadratic transformation kernel set to be applied to the current block from among pre-defined quadratic transformation kernel sets based on the intra prediction mode of the current block; Determining a quadratic transform kernel to be applied to the current block in the kernel set; Generating a second-order inverse transformed block of the transformed block by performing a second-order inverse transform in units of the transform block; and generating a residual block of the transform block by performing a first-order inverse transform on the second-order inverse transformed block.
- a video signal processing apparatus including a processor, the processor, an intra subpartition (ISP, Intra)
- ISP intra subpartition
- Sub-Partitions) mode is applied or not, and when ISP mode is applied to the current block, the current block is divided into a plurality of horizontal or vertical rectangular transform blocks, and for each of the transform blocks
- the processor comprises: in units of transform blocks divided from the current block.
- a video signal processing apparatus which is characterized by performing position-dependent intra prediction sample filtering, i.e., position-dependent intra prediction sample filtering.
- the processor may determine whether to apply the position-dependent intra prediction sample filtering based on at least one of the width and height of the transform block.
- the processor when the width of the transform block is greater than or equal to a preset reference value, and, and the height of the transform block is greater than or equal to the preset reference value, the position-dependent intra prediction sampling filtering It can be decided by applying
- the residual block of the transform block is a second difference in units of the transform block.
- the processor determines whether or not the quadratic transformation is applied to the current block
- a quadratic transform kernel applied to the current block is determined, and a quadratic inverse transform of the transform block is generated by performing a quadratic inverse transform in units of the transform block, and with respect to the secondary inverse transformed block
- a quadratic inverse transform of the transform block may be generated.
- ISP Intra Sub-Partitions
- the current block Dividing n into a plurality of horizontal or vertical rectangular transform blocks; generating prediction blocks of the transform blocks by performing intra prediction for each of the transform blocks; and subtracting the prediction blocks from the original block Including the step of generating a residual block of the transform block, wherein the step of generating the prediction block, Position-dependent intra prediction sample filtering in units of transform blocks divided from the current block (position-dependent intra prediction sample filtering)
- a video signal processing method comprising the step of performing:
- a computer-executable component configured to run on one or more processors of a computing device is stored.
- the computer-executable component determines whether or not the Intra Sub-Partitions (ISP) mode is applied to the current block, and if the ISP mode is applied to the current block, the current block is multiplexed. Dividing into rectangular transform blocks in the horizontal or vertical direction of, and performing intra prediction for each of the transform blocks to generate prediction blocks of the transform blocks, and based on the residual block of the transform block and the prediction block, the The current block is restored, but the computer-executable component is a non-transitory, characterized by performing position-dependent intra prediction sample filtering in units of transform blocks divided from the current block.
- a computer-readable medium is provided.
- the coding efficiency of a video signal can be improved.
- the PDPC is divided into a transform block unit divided by intra sub-partitions. (Po sition-dependent intra prediction combination) and LFNST can improve the accuracy of prediction and improve compression performance.
- FIG. 1 is a schematic diagram of a video signal encoding apparatus according to an embodiment of the present invention
- FIG. 1 is a schematic diagram of a video signal decoding apparatus according to an embodiment of the present invention
- FIG. 3 shows an embodiment in which a coding tree unit is divided into coding units in a picture.
- FIG. 4 is a diagram of a method for signaling division of a quad tree and a multi-type tree
- FIG 5 and 6 more specifically illustrate an intra prediction method according to an embodiment of the present invention.
- FIG 7 shows an inter prediction method according to an embodiment of the present invention.
- FIG. 8 is a detailed illustration of a method for converting a residual signal by an encoder.
- FIG. 9 is a diagram specifically showing a method of obtaining a residual signal by inversely transforming a conversion coefficient by an encoder and a decoder.
- FIG. W is a diagram for explaining an application method of an intra prediction mode when a coding block is divided into a plurality of transform blocks according to an embodiment of the present invention.
- FIG. 11 is a diagram for explaining a method of applying a position-dependent intra prediction combination (PDPC) according to an embodiment of the present invention.
- PDPC position-dependent intra prediction combination
- FIG. 12 is a diagram illustrating a reference sample used for a PDPC according to an intra prediction mode as an embodiment of the present invention.
- FIG. 13 is a diagram illustrating a reference sample used for a PDPC according to an intra prediction mode according to an embodiment of the present invention.
- FIG. 14 is a diagram illustrating a method of applying Intra subpartitions (ISP) and position-dependent intra prediction combination (PDPC) to a coding block according to an embodiment to which the present invention is applied.
- ISP Intra subpartitions
- PDPC position-dependent intra prediction combination
- 15 is a diagram for explaining a conversion unit division processing method according to an embodiment of the present invention.
- 16 is a diagram showing a process of encoding/decoding through a primary transform and a secondary transform according to an embodiment to which the present invention is applied.
- FIG. 17 shows a conversion kernel used for a second-order conversion according to an embodiment of the present invention.
- FIG. 18 illustrates a method of applying a second-order transform in units of transform blocks according to an embodiment of the present invention.
- 19 is a diagram showing a method of applying a PDPC to a current coding block to which an intra prediction mode is applied according to an embodiment to which the present invention is applied.
- 20 is a diagram showing a video signal processing method according to an embodiment of the present invention 2020/175965 1»(:1/10 ⁇ 020/002920
- Coding can be interpreted as encoding or decoding in some cases.
- a device that performs encoding (encoding) of a video signal to generate a video signal bitstream Is referred to as an encoding device or an encoder, and a device that restores a video signal by performing decoding (decoding) of a video signal bitstream is referred to as a decoding device or a decoder.
- the video signal processing device is used as a term for a concept that includes both an encoder and a decoder.
- Information is values
- 'Unit' is a basic unit or picture of image processing. It is used as a meaning to refer to a specific position of, and refers to an image area containing at least one of a luma component and a chroma component.
- 'block' refers to the luma component and chroma components (i.e., Cb and Cr) refers to an image area containing a specific component.
- Cb and Cr chroma components
- a unit is a coding unit. It can be used as a concept that includes all of a unit, a prediction unit, and a conversion unit.
- a picture indicates a field or a frame, and the terms may be used interchangeably according to an embodiment.
- an encoding apparatus 100 of the present invention includes a conversion unit 110 and a quantization unit. 115, an inverse quantization unit 120, an inverse transform unit 125, a filtering unit 130, a prediction unit 150, and an entropy coding unit 160.
- the conversion unit (1W) converts the residual signal, which is the difference between the input video signal and the prediction signal generated by the prediction unit 150, to obtain a conversion coefficient value.
- Discrete Cosine Transformation Discrete Cosine Transform, DCT
- DST Discrete Sine Transform
- Wavelet Transform can be used.
- the input picture signal is divided into blocks to perform transform.
- the coding efficiency may vary according to the distribution and characteristics of values in the transform region.
- the quantization unit 115 transforms Output from negative (H0) 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- a method of predicting a picture using a region already coded through the prediction unit 150, and obtaining a restored picture by adding a residual value between the original picture and the predicted picture to the predicted picture is used. Mismatch in the encoder and the decoder In order not to occur, the information available in the decoder must be used when performing prediction in the encoder. To this end, the encoder performs a process of restoring the encoded current block again.
- the conversion coefficient value Inverse quantization Inverse quantization
- the inverse transform unit 125 restores the residual value by using the inverse quantized transform coefficient value.
- the filtering unit 130 performs a filtering operation to improve quality and encoding efficiency of the restored picture. For example, it may include a deblocking filter, a sample adaptive offset (SA0), and an adaptive loop filter.
- SA0 sample adaptive offset
- SA0 sample adaptive offset
- the filtered picture is output or stored in a decoded picture buffer (DPB, 156) to be used as a reference picture.
- the inter prediction unit 154 may again include a motion estimation unit 154a and a motion compensation unit 154b.
- the motion vector value of the current area is obtained by referring to the restored specific area.
- the position information (reference frame, motion vector, etc.) of the reference area is transferred to the entropy coding unit ( 160) to be included in the bitstream.
- the motion compensation unit 154b performs inter-screen motion compensation using the motion vector value transmitted from the motion estimation unit 154a.
- the prediction unit 150 includes an intra prediction unit 152 and an inter prediction unit 154. Intra
- the prediction unit 152 performs intra prediction in the current picture
- the prediction unit 154 performs inter prediction for predicting the current picture using the reference picture stored in the decoded picture buffer 156.
- the intra prediction unit 152 performs intra prediction from reconstructed samples in the current picture.
- the intra-encoding information is transmitted to the entropy coding unit 160.
- the intra-encoding information may include at least one of an intra prediction mode, a Most Probable Mode (MPM) flag, and an MPM index.
- Intra-encoding information is a reference sample
- the inter prediction unit 154 may include a motion estimation unit 154a and a motion compensation unit 154b.
- the motion estimation unit 154a determines a specific region of the restored reference picture.
- the motion vector value of the current region is obtained by reference.
- the motion estimation unit 154a is a set of motion information for the reference region (reference 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the picture index, motion vector information, etc.) are transmitted to the entropy coding unit 160.
- the motion compensation unit 154b performs motion compensation by using the motion vector value transmitted from the motion estimation unit 154a.
- Inter prediction The unit 154 transmits inter-coding information including motion information for the reference region to the entropy coding unit 160.
- the prediction unit 150 may include an intra block copy (BC) prediction unit (not shown).
- the intra BC prediction unit predicts intra BC from restored samples in the current picture. And transmits the intra BC encoding information to the entropy coding unit 160.
- the intra BC prediction unit refers to a specific region in the current picture and obtains a block vector value indicating a reference region used for prediction of the current region.
- the BC prediction unit can perform intra BC prediction using the acquired block vector value.
- the intra BC prediction unit transfers the intra BC encoding information to the entropy coding unit 160.
- the intra BC encoding information may include block vector information. .
- the conversion unit 110 converts the residual value between the original picture and the predicted picture to obtain a conversion coefficient value. At this time, the conversion can be performed in a specific block unit within the picture. In addition, the size of a specific block may vary within a preset range.
- the quantization unit 115 quantizes the value of the transformation coefficient generated by the transformation unit U0 and transmits the quantization to the entropy coding unit 160.
- the entropy coding unit 160 entropy-codes information indicating a quantized conversion factor, intra-coding information, and inter-coding information to generate a video signal bitstream.
- variable length coding is performed.
- Variable Length Coding (VLC) method and arithmetic coding method can be used.
- Variable Length Coding (VLC) method converts input symbols into consecutive codewords, and the length of the codeword can be variable. For example, symbols that occur frequently are expressed as short codewords and those that do not occur frequently are expressed as long codewords.
- Context-based Adaptive Variable Length Coding (CAVLC) is a variable length coding method. ) Method can be used.
- Arithmetic coding converts consecutive data symbols into a single decimal number, where arithmetic coding can obtain the optimal fractional bits needed to represent each symbol.
- Context-based adaptive arithmetic coding (as arithmetic coding)
- Context-based Adaptive Binary Arithmetic Code (CAB AC)
- CAB AC Context-based Adaptive Binary Arithmetic Code
- the entropy coding unit 160 can binarize information representing a quantized transformation coefficient.
- the entropy coding unit 160 can be binarized.
- the bitstream can be generated by arithmetic coding the information.
- the generated bitstream is encapsulated in a basic unit of a network abstraction layer (NAL) unit.
- NAL network abstraction layer
- the NAL unit contains an integer number of coded coding tree units.
- the bitstream must first be separated into NAL unit units, and then each separated NAL unit must be decoded.
- RBSP Raw Byte Sequence Payload
- PPS Picture Parameter Set
- SPS Sequence Parameter Set
- VPS Video Parameter Set
- FIG. 1 shows the encoding apparatus 100 according to an embodiment of the present invention, and the separately displayed blocks are shown by logically discriminating elements of the encoding apparatus 100. Therefore, the above description
- the elements of the Korean encoding device 100 may be mounted as one chip or as a plurality of chips depending on the design of the device. According to one embodiment, the operation of each element of the encoding device W0 described above is a processor (not shown). Can be done by
- FIG. 2 is a schematic block diagram of a video signal decoding apparatus 200 according to an embodiment of the present invention.
- the decoding apparatus 200 of the present invention is entropy.
- It includes a decoding unit (2W), an inverse quantization unit 220, an inverse transform unit 225, a filtering unit 230 and a prediction unit 250.
- the entropy decoding unit 210 entropy decodes the video signal bitstream to extract conversion coefficient information, intra coding information, inter coding information, etc. for each region. For example, the entropy decoding unit 210 Video signal
- a binary code for conversion coefficient information of a specific region can be obtained.
- the entropy decoding unit 2W inversely binarizes the binary code to obtain a quantized conversion factor.
- the inverse quantization unit 220 is a quantization unit.
- the transform coefficient is inverse quantized, and the inverse transform unit 225 restores the residual value by using the inverse quantized transform coefficient.
- the video signal processing apparatus 200 restores the original pixel value by summing the residual value obtained by the inverse transform unit 225 with the predicted value obtained by the prediction unit 250.
- the filtering unit 230 improves image quality by performing filtering on a picture.
- This may include a deblocking filter to reduce block distortion and/or an adaptive loop filter to remove distortion of the entire picture.
- the filtered picture is output or decoded to be used as a reference picture for the next picture. picture
- the prediction unit 250 includes an intra prediction unit 252 and an inter prediction unit 254.
- the prediction unit 250 generates a prediction picture by using the encoding type decoded through the entropy decoding unit 2W described above, the transformation coefficient for each region, and intra/inter encoding information.
- the current block on which decoding is performed is performed.
- the current picture including the current block or the decoded area of other pictures can be used.
- Intra picture or I picture (or tile/slice) a picture that can perform both intra prediction, inter prediction, and intra BC prediction (or,
- a tile/slice is called an inter-picture (or tile/slice).
- a maximum of one motion is used to predict the sample values of each block in the inter-picture (or tile/slice).
- a picture (or tile/slice) using a vector and reference picture index is called a predictive picture or a P picture (or tile/slice), and a picture using up to two motion vectors and reference picture indexes (or , Tile/slice) is called a bi-predictive picture (Bi-predictive picture) or B picture (or tile/slice)
- a P picture (or tile/slice) is at most one motion information to predict each block.
- a set is used, and the B picture (or tile/slice) uses up to two sets of motion information to predict each block, where the motion information set includes one or more motion vectors and one reference picture index.
- the intra prediction unit 252 generates a block, for example, by using the intra-encoding information and the restored samples in the current picture.
- the intra-encoding information is an intra prediction mode, a Most Probable Mode (MPM) flag, At least one of the MPM indexes may be included.
- the intra prediction unit 252 predicts the sample values of the current block by using the restored samples located on the left and/or above the current block as reference samples.
- the reconstructed samples, reference samples, and samples of the current block can represent pixels. Also, sample values can represent pixel values.
- the reference samples may be samples included in a block around the current block.
- the reference samples are samples adjacent to the left boundary of the current block and/or samples adjacent to the upper boundary.
- the reference samples are samples located on a line within a preset distance from the left boundary of the current block among samples of the neighboring block of the current block and/or a line within a preset distance from the upper boundary of the current block.
- the block around the current block is the left (L) block, the upper (A) block, the lower left (BL) block, and the upper right (Above Right, AR) block.
- Blocks or Above Left (AL) blocks can contain at least one.
- the inter prediction unit 254 generates a prediction block using the reference picture and inter-coding information stored in the decoded picture buffer 256.
- the inter-coding information is a motion information set (reference picture) of the current block for the reference block. Index, motion vector information, etc.)
- Inter prediction may include L0 prediction, L1 prediction, and bi-prediction.
- L0 prediction refers to prediction using one reference picture included in the L0 picture list
- time prediction refers to prediction using one reference picture included in the L1 picture list.
- one set of motion information e.g., motion vector and reference picture index
- up to two reference areas can be used, but these two reference areas may exist in the same reference picture.
- up to two sets of motion information e.g., a motion vector and a reference picture index
- the two motion vectors are in the same reference picture index. They may be mapped to different reference picture indices.
- the reference pictures may be temporally set before or after the current picture.
- the two reference areas used in the pair prediction method may be areas selected from each of the L0 picture list and the L1 picture list.
- the inter prediction unit 254 can obtain the reference block of the current block by using the motion vector and the reference picture index.
- the reference block exists in the reference picture corresponding to the reference picture index.
- the sample value of the block specified by or its interpolated value can be used as a predictor of the current block.
- an 8-tap interpolation filter can be used for the luma signal
- a 4-tap interpolation filter can be used for the chroma signal.
- the interpolation filter for motion prediction is not limited thereto.
- the inter prediction unit 254 performs motion compensation, i.e., the texture of the current unit, from the previously restored picture. In this case, the inter prediction unit motion information Sets are available.
- the prediction unit 250 may include an intra BC prediction unit (not shown).
- the intra BC prediction unit refers to a specific area including restored samples in the current picture and refers to the current area.
- the intra BC prediction unit acquires intra BC encoding information for the current region from the entropy decoding unit 2W.
- the intra BC prediction unit obtains a block vector value of the current area indicating a specific area in the current picture.
- the intra BC prediction unit can perform intra BC prediction using the obtained block vector value.
- the intra BC encoding information is block vector information. May contain
- the residual value output from the inverse transform unit 225 is added to generate a restored video picture. That is, the video signal decoding apparatus 200 is obtained from the prediction block generated by the prediction unit 250 and the inverse transform unit 225. The current block is restored using the residual.
- FIG. 2 shows the decoding apparatus 200 according to an embodiment of the present invention, and the separately displayed blocks are shown by logically discriminating elements of the decoding apparatus 200. Therefore, the above description
- the elements of the decoding device 200 may be mounted as a single chip or a plurality of chips depending on the design of the device. According to an embodiment, the operation of each element of the decoding device 200 described above is a processor (not shown). Can be done by
- Fig. 3 is a Coding Tree Unit (CTU) encoding in the picture
- a picture can be divided into a sequence of coding tree units (CTUs).
- a coding tree unit is an NXN of luma samples. It is composed of a block and two blocks of corresponding chroma samples.
- the coding tree unit can be divided into a plurality of coding units.
- the coding tree unit may be an undivided cyclic node. 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the coding tree unit itself may be a coding unit.
- the coding unit is the basic for processing pictures in the process of processing video signals described above, i.e., intra/inter prediction, transformation, quantization and/or entropy coding. Points to the unit. In one picture, the size and shape of the coding unit may not be constant.
- the coding unit may have a square or rectangular shape.
- a rectangular coding unit (or, a rectangular block) is horizontal with a vertical coding unit (or, a vertical block). Includes a coding unit (or horizontal block).
- a vertical block is a block whose height is greater than the width
- a horizontal block is a block whose width is greater than the height.
- non-square (non-square) ) Block may refer to a rectangular block, but the present invention is not limited thereto.
- the coding tree unit first has a quad tree (QT) structure.
- one node with a size of 2NX2N can be divided into four nodes with a size of NXN.
- a quadtree is
- quadtree partitioning can be done recursively, and not all nodes need to be partitioned to the same depth.
- the leaf node of the above-described quad tree can be further divided into a multi-type tree (MTT) structure.
- MTT multi-type tree
- one The nodes of can be divided into a binary (binary) or ternary (ternary) tree structure of horizontal or vertical division, i.e., a multi-type tree structure includes vertical binary division, horizontal binary division, and vertical ternary division.
- a multi-type tree structure includes vertical binary division, horizontal binary division, and vertical ternary division.
- the width and height of the nodes in each of the above tree structures may both have a power of two.
- a node with a size of 2NX2N can be divided into two NX2N nodes by vertical binary division, and divided into two 2NXN nodes by horizontal binary division.
- a node of 2NX2N size is divided into (N/2)X2N, NX2N, and (N/2)X2N nodes by vertical ternary division, and horizontal ternary division It can be divided into nodes of 2NX(N/2), 2NXN and 2NX(N/2) by.
- This multi-type tree division can be performed recursively.
- a leaf node of a multi-type tree can be a coding unit.
- the coding unit is used as a unit of prediction and conversion without further division.
- the following parameters in the quadtree and multi-type tree described above At least one of them may be predefined or transmitted through RBSP of a higher level set such as PPS, SPS, VPS, etc.
- Minimum allowable depth of segmentation 6) Minimum BT size (MinBtSize): Minimum allowed BT leaf node size, 7) Minimum TT size (MinTtSize): Minimum allowed TT leaf node size.
- FIG. 4 is a diagram of a method for signaling division of a quad tree and a multi-type tree
- Pre-set flags may be used to signal the division of the quad tree and the multi-type tree described above.
- a flag'qt_split_flag' indicating whether or not the quad tree node is divided
- multi -type tree indicating the division whether the node flag 'mtt_split_flag', a multi-even always lag
- mtt_split_binary_flag popularly indicative of a division form of the type tree node always indicative of a dividing direction of the types of tree nodes lag 'mtt_split_vertical_flag' or multi- One can be used.
- the coding tree unit is a root node of a quad tree, and can be pre-divided into a quad tree structure.
- each node'QT_node' is qt_split_flag, and is signaled., qt_split_flag,If the value of is 1, the corresponding node
- Each quad tree leaf node'QT_leaf_node' can be further divided into a multi-type tree structure.
- 'mtt_split_flag' is signaled. If the value of'mtt_split_flag' is 1, the node is divided into a plurality of rectangular nodes, and if the value of'mtt_split_flag' is 0, the node becomes'MTT_leaf_node' of the multi-type tree. Multi-type tree node'MTT_node' When divided into'multiple rectangular nodes' (that is, the value of'mtt_split_flag' is
- 'mtt_split_binary_flag' can be signaled at the stock price. If the value of'mtt_split_vertical_flag' is 1, the vertical division of the node'MTT_node' is indicated.
- Picture prediction (motion compensation) for coding is performed on a coding unit that is no longer divided (i.e., a leaf node of the coding unit tree).
- the basic unit that performs such prediction is hereinafter referred to as a unit (prediction unit) or That is, it is called a prediction block.
- the unit may be used as a term to replace the prediction unit.
- the present invention is not limited thereto, and more broadly, it can be understood as a concept including the coding unit.
- the intra prediction unit refers to the restored samples located at the left and/or upper sides of the current block.
- the current block 's sample values 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- FIG. 5 shows an embodiment of reference samples used for prediction of the current block in the intra prediction mode.
- the reference samples are samples adjacent to the left boundary of the current block and/or the upper side.
- the reference samples can be set using up to 2 +211 +1 ambient samples located on the top.
- the intra prediction unit can obtain a reference sample by performing a reference sample padding process.
- the intra prediction unit may perform a reference sample filtering process to reduce errors in intra prediction, i.e., filter the surrounding samples and/or reference samples obtained by the reference sample padding process, and filter the filtered reference samples.
- the intra prediction unit predicts the samples of the current block by using the thus obtained reference samples.
- the intra prediction unit predicts the samples of the current block by using the unfiltered reference samples or the filtered reference samples.
- the surrounding samples may contain samples on at least one reference line; for example, the surrounding samples may contain adjacent samples on a line adjacent to the boundary of the current block.
- FIG. 6 shows an embodiment of prediction modes used for intra prediction.
- intra prediction mode information indicating an intra prediction direction may be signaled.
- the intra prediction mode information indicates any one of a plurality of intra prediction modes constituting an intra prediction mode set.
- Current block In the case of this intra prediction block, the decoder receives intra prediction mode information of the current block from the bitstream.
- the intra prediction unit of the decoder performs intra prediction on the current block based on the extracted intra prediction mode information.
- the intra prediction mode set may include all intra prediction modes (eg, a total of 67 intra prediction modes) used for intra prediction. More specifically, the intra prediction mode set includes planar mode, IX: mode, and multiple (e.g.,
- Each intra prediction mode can be indicated through a preset index (ie, intra prediction mode index).
- the intra prediction mode index 0 indicates the planar mode
- the intra prediction mode index 1 indicates the 1: mode.
- the intra prediction mode indexes 2 to 66 indicate different angle modes.
- Each of the angle modes indicates different angles within a preset angle range.
- the angle mode is an angle range between 45 degrees and -135 degrees clockwise (that is, the first angle range). The angle within the range can be indicated.
- the angle mode can be defined based on the 12 o'clock position.
- the intra prediction mode index 2 is the horizontal diagonal ⁇ 03 01 1 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- intra prediction mode index 34 indicates diagonal (DIA) mode
- intra prediction mode index 50 is
- the vertical (VER) mode is indicated, and the intra prediction mode index 66 indicates the vertical diagonal (VDIA) mode.
- the inter prediction method may include a general inter prediction method optimized for translation motion and an inter prediction method based on an affine model.
- the motion vector is a general inter prediction method. Depending on the method, it may contain at least one of a general motion vector for motion compensation and a control point motion vector for affine motion compensation.
- Fig. 7 shows an inter prediction method according to an embodiment of the present invention.
- the decoder can predict the current block by referring to restored samples of another decoded picture.
- the decoder obtains the reference block 702 in the reference picture 720 based on the motion information set of the current block 701.
- the motion information set may include a reference picture index and a motion vector.
- the reference picture index is In the reference picture list, a reference picture 720 containing a reference block for inter prediction of the current block is indicated.
- the reference picture list may include at least one of the L0 picture list or the L1 picture list described above.
- the motion vector represents the offset between the coordinate value of the current block 701 in the current picture (base 0) and the coordinate value of the reference block 702 in the reference picture 720.
- the decoder is in the reference block 702.
- a predictor of the current block 701 is obtained based on the sample values, and the current block 701 is restored using the predictor.
- the encoder has a restoration sequence similar to the current block in the previous pictures.
- the encoder can search for a reference block in which the sum of the difference between the current block and the sample value is the minimum within a preset search area, at this time, the current block and the reference block.
- At least one of SAD (Sum Of Absolute Difference) or SATD (Sum of Hadamard Transformed Difference) can be used to determine the similarity between the samples in the block, where SAD is the difference between the sample values contained in the two blocks, respectively. It can be the sum of all the absolute values.
- SATD is the difference between the sample values included in the two blocks.
- the current block can also be predicted using more than one reference area. As described above, the current block has two or more reference areas. Inter prediction can be made through a pair prediction method using a pair prediction method.
- the decoder can acquire two reference blocks based on two sets of motion information of the current block. In addition, the decoder can obtain two reference blocks. Based on the respective sample values, it is possible to obtain the first predictor and the second predictor of the current block. In addition, the decoder uses the first predictor and the second predictor. 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the decoder can restore the current block based on the sample-by-sample average of the first predictor and the second predictor.
- a set can be signaled.
- the similarity between a set of motion information for motion compensation for each of a plurality of blocks can be used.
- the set of motion information used for prediction of the current block is one of the other samples that have been restored. It can be derived from a set of motion information used for one prediction.
- the encoder and decoder can reduce signaling overhead.
- the decoder can generate a merge candidate list based on the plurality of candidate blocks.
- the merge candidate list is the motion information related to the motion information set of the current block among samples restored earlier than the current block. Can include candidates corresponding to samples that are likely to have been predicted based on the set.
- Encoder and decoder can construct a merge candidate list of the current block according to predefined rules.
- the merge candidate list each configured by encoder and decoder can be identical to each other. For example, encoder and decoder are within the current picture.
- the merge candidate list of the current block can be constructed based on the location of the current block.
- the location of a specific block Represents the relative position of the top-left sample of the specific block within the picture containing the specific block.
- the above-described residual signal is not coded as it is, but a method of quantizing the conversion coefficient value obtained by converting the residual signal and coding the quantized conversion coefficient can be used.
- the conversion unit can convert the residual signal to obtain a conversion coefficient value.
- the residual signal of a specific block may be distributed over the entire area of the current block. Accordingly, the frequency of the residual signal is obtained. Coding efficiency can be improved by concentrating energy in a low-frequency region through region transformation.
- a method in which the residual signal is transformed or inversely transformed will be described in detail.
- FIG. 8 is a detailed illustration of a method for converting a residual signal by an encoder.
- the residual signal in the spatial domain can be converted to the frequency domain.
- the encoder can convert the acquired residual signal to obtain the conversion coefficient.
- the encoder is the residual for the current block. At least one residual block containing a signal can be obtained.
- the residual block can be either the current block or blocks divided from the current block.
- the residual block is the residual samples of the current block. It may be referred to as a containing residual array or a residual matrix.
- a residual block may represent a transform unit or a block of the same size as the size of the transform block. 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the encoder can convert the residual block using a conversion kernel.
- the transformation kernel used for transformation for a residual block may be a transformation kernel with separable characteristics of a vertical transformation and a horizontal transformation.
- the transformation for a residual block can be performed separately into a vertical transformation and a horizontal transformation.
- the encoder can perform vertical conversion by applying the conversion kernel in the vertical direction of the residual block.
- the encoder can perform horizontal conversion by applying the conversion kernel in the horizontal direction of the residual block.
- the conversion kernel can be used as a term to designate a set of parameters used in the conversion of a residual signal, such as conversion matrix, conversion array, conversion function, conversion.
- the conversion kernel is a plurality of available kernels. It can be any one of the above.
- a transformation kernel based on a different transformation type may be used. See Figures 12 to 26 for how one of the multiple available transformation kernels is selected. It will be described later through.
- the encoder can quantize by passing the transform block transformed from the residual block to the quantization unit.
- the transform block may contain a plurality of transform coefficients.
- the transform block may be composed of a plurality of transform coefficients arranged in a two-dimensional arrangement.
- the size of the transform block is the current block or the current block, like the residual block.
- the transform coefficients passed to the quantization section can be expressed as quantized values.
- the encoder can perform additional transformations before the transformation factor is quantized. As shown in Figure 8, the above-described conversion method
- the second-order transformation may be selective for each residual block.
- the encoder may improve the coding efficiency by performing a second-order transformation for a region where it is difficult to concentrate energy in the low-frequency region only by the first-order transformation.
- a quadratic transformation may be added to a block in which residual values appear largely in a direction other than the horizontal or vertical direction of the residual block.
- the residual values of the intra-predicted block are to the residual values of the inter-predicted block.
- the probability of changing in a direction other than the horizontal or vertical direction may be high.
- the encoder can additionally perform a quadratic transformation on the residual signal of the intra-predicted block.
- the encoder can additionally perform the quadratic transformation of the inter-predicted block.
- the second order conversion can be omitted for the residual signal.
- a transformation kernel having different sizes depending on the size of the current block or residual block may be used.
- 8X8 quadratic transformation may be applied to blocks whose shorter side of the width or height is greater than or equal to the first preset length.
- the length of the shorter side of the width or height may be less than the second preset length.
- the first preset length may be a value larger than the second preset length, but this initiation is not limited to this.
- the second transform is different from the first transform, the vertical transform and the horizontal transform. It may not be performed separately as a transformation.
- This second-order transform may be referred to as a low frequency non-separable transform (LFNST).
- LNNST low frequency non-separable transform
- the high frequency band energy may not decrease even if frequency conversion is performed due to a sudden change in brightness. As a result, the compression performance due to quantization may be degraded. In addition, the residual value may be reduced. If conversion is performed for an existing region, the encoding time and the decoding time may unnecessarily increase. Accordingly, the conversion for the residual signal in a specific region may be omitted.
- Whether or not to perform transformation on the residual signal of a specific region may be determined by a syntax element related to transformation of a specific region.
- the syntax element may include transform skip information. May be a transform skip flag.
- the encoder When the transform skip information for a residual block indicates a transform skip, no transformation is performed for the corresponding residual block. In this case, the encoder does not perform transformation of the corresponding region. The remaining residual signal can be directly quantized.
- the operations of the encoder described with reference to FIG. 8 can be performed through the converter of FIG.
- the above-described conversion-related syntax elements may be information parsed from the video signal bitstream.
- the decoder can obtain conversion-related syntax elements by entropy-decoding the video signal bitstream.
- the encoder can entropy the conversion-related syntax elements. It can be coded to create a video signal bitstream.
- FIG. 9 is a diagram specifically showing a method of obtaining a residual signal by inverse conversion of a conversion factor by an encoder and a decoder.
- the inverse conversion operation is performed through the inverse conversion units of the encoder and decoder.
- the inverse transform unit may inversely transform the inverse quantized transform coefficient to obtain a residual signal.
- the inverse transform unit may detect whether an inverse transform for the corresponding region is performed from the transform-related syntax element of a specific region.
- a specific transform If the transform-related syntax element for a block indicates a transform skip, the transform for the corresponding transform block may be omitted. In this case, both the first-order inverse transform and the second-order inverse transform described above for the transform block may be omitted.
- inverse quantization The converted conversion factor can be used as a residual signal; for example, the decoder can restore the current block by using the inverse quantized conversion factor as the residual signal.
- a transform-related syntax element for a specific transform block may not indicate a transform skip.
- the inverse transform unit may determine whether to perform a second-order inverse transform for the second transform. For example, When the transform block is a transform block of an intra-predicted block, a second-order inverse transform may be performed on the transform block. Also, based on the intra prediction mode corresponding to the transform block, a second-order transform used for the transform block is used. 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the kernel can be determined. As another example, whether to perform the second-order inverse transform may be determined based on the size of the transform block.
- the second-order inverse transform can be performed after the inverse quantization process and before the first-order inverse transform is performed.
- This inverse transform unit can perform a first-order inverse transform on the inverse quantized transform coefficient or the second inverse transformed transform coefficient.
- the first-order inverse transformation it can be performed separately as a vertical transformation and a horizontal transformation, like the first-order transformation.
- the inverse transformation unit can obtain a residual block by performing a vertical inverse transformation and a horizontal inverse transformation on a transform block.
- the inverse transform unit can inverse transform the transform block based on the transform kernel used for transforming the transform block.
- the encoder explicitly specifies information indicating the transform kernel applied to the current transform block among a plurality of available transform kernels. It can be signaled implicitly.
- the decoder can select a transform kernel to be used for inverse transform of a transform block from among a plurality of available transform kernels using information representing the signaled transform kernel.
- the inverse transform section is obtained through inverse transform of the transform coefficient.
- the current block can be restored using the residual signal.
- FIG. W shows a coding block according to an embodiment of the present invention as a plurality of transform blocks.
- the intra prediction mode is a coding unit (or coding unit).
- Block (hereinafter, it may be abbreviated as a block) can be determined in units. And, the coding unit can be divided into a plurality of transform blocks. As an example, the intra prediction mode is modified (or modified) based on the shape of the coding block. Can be interpreted, decided, and improved).
- nTbW is the width of the transform block and nTbH is the height of the transform block.
- nTbW may be a variable indicating the width of the coding block
- nTbH may be a variable indicating the height of the coding block.
- whRatio is a variable representing the ratio of width and height. For example, whRatio is
- the intra prediction mode signaled from the encoder to the decoder is referred to as the first prediction mode (or the first intra prediction mode), and is modified (or The reinterpreted, determined, improved) mode can be referred to as a second prediction mode (or a second intra prediction mode).
- abs() represents an operator (or function) taking an absolute value.
- Modified intra intra prediction mode The prediction mode can be derived based on the following conditions.
- the decoder sets wideAngle to 1 when the above three conditions 1 to 3 are satisfied, 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the second prediction mode can be set to (1st prediction mode + 65).
- the second prediction mode can be set to (1st prediction mode-67).
- the intra prediction mode can be divided into a basic angle mode and an extended angle mode.
- the basic angle mode may be angle modes within the range of +-45 based on a vertical mode/horizontal mode
- the extended angle mode can be an angle mode that exceeds +-45 degrees based on the vertical mode/horizontal mode. Therefore, the signaled mode information can use the basic angle mode or the extended angle mode depending on the shape of the coding block.
- the number of available modes can be defined according to the horizontal to vertical ratio (or vertical to horizontal ratio) based on the shape of the coding block. As an example, the ratio is 2: 1, 4: 1 , 8: 1, 16: 1, etc. can be defined (or set).
- Blocks can have the form of a vertical rectangular block, where ⁇ year& is a variable representing the width of the coding block,
- the signaled intra prediction mode 2 can be reinterpreted based on the shape of the first transform block and modified to an extended angle mode. According to the above-described analysis method, it becomes (2+65), and the second prediction mode is It can be derived (or determined) by 67, i.e., the intra prediction mode determined in units of the coding block may not be used equally in units of the transform blocks. In this case, a change in performance may also occur.
- a method of applying the method of determining the wide-angle mode as follows in order to apply the intra prediction mode determined in the coding block equally to the transform block is proposed as follows.
- the encoder/decoder can set and to the peak of the coding block 53 ⁇ 43 ⁇ 4.
- the encoder/decoder determines whether to use the wide-angle mode by using the height and width of the coding block including the conversion block ( In the diagram, the case where the conversion block is divided into a horizontal rectangular shape is given as an example, but the present invention is not limited to this, i.e., the same even when divided into a vertical rectangle, a square or a combination of several shapes. Embodiments suggested below may be applied. 2020/175965 1»(:1/10 ⁇ 020/002920
- FIG. 11 is a diagram illustrating a method of applying a position-dependent intra prediction combination (PDPC) according to an embodiment of the present invention.
- PDPC can be applied to Intra Block if all of the following conditions are satisfied.
- IntraSubPartitionsSplitType (ISP split type) is ISP_NO_SPLIT or
- cldx (component index) is not equal to 0
- [111]-predModeIntra is INTRA_ANGULAR 18
- the PDPC operation can be applied according to the method described below.
- the PDPC described in the present invention is not limited to its name, and the always PDPC is a position-dependent intra, i.e., fine filtering It can also be referred to as (Position-dependent intra prediction sample filtering).
- the predicted sample pred at the (X, y) position (x, is the linearity of the reference sample according to the intra prediction mode (eg, DC, planner, directional mode) and PDPC as shown in Equation 1 below. It can be predicted using combinations.
- the intra prediction mode eg, DC, planner, directional mode
- PDPC e.g., PDPC
- the yoni and yo are the references located on the left and upper sides of the current sample ⁇ , respectively
- the weight can be referred to as the weight based on the following Equation 2) Can be calculated.
- the PDPC weight can only be calculated based on the summation and shift operation. 2020/175965 1»(:1/10 ⁇ 020/002920
- the pred(x, y) value can be calculated in a single step using Equation 1 described above.
- the additional boundary filtering is of a conventional image compression technology (eg, HEVC). It can include a DC mode boundary filter or an old filter in horizontal/vertical mode.
- FIG. 12 is a diagram illustrating a reference sample used for a PDPC according to an intra prediction mode according to an embodiment of the present invention.
- FIG. 12(a) is a case where the intra prediction mode is the prediction mode 2 12(b) assumes that the intra prediction mode is the prediction mode 66.
- FIG. 12 shows the case where the PDPC is applied to the top-right diagonal mode, reference sample R Figures R_1y and R.
- the predicted sample pred(x', y') represents the predicted sample located at (x', y') in the predicted block.
- the PDPC weight for the upper right diagonal mode is
- FIG. 13 is a diagram illustrating a reference sample used for a PDPC according to an intra prediction mode according to an embodiment of the present invention.
- FIG. 13(a) is a mode number (or mode) of an intra prediction mode. Index) is assumed to be any one of 3 to 10, and Fig. 13(b) assumes that the mode number of the intra prediction mode is any one of 58 to 65. Similar to Fig. 12, 13 is left and lower left and lower. Side diagonal
- Prediction sample P red(x', y') is (x', y') in the prediction block. )
- the PDPC weight for the lower left diagonal mode is
- the PDPC weight can be defined as in Equation 5 below.
- the PDPC weight can be defined as in Equation 6 below.
- the diagonal mode and the adjacent mode of the diagonal mode shown in FIG. May not require additional boundary filtering.
- the reference sample coordinates of the example shown in Fig. 13 can be derived based on a table defined for directional mode intra prediction. As described above, since the table can be defined in a diagonal line and its adjacent mode, in the present invention It has the advantage that an additional table is not required according to the PDPC implementation described. In addition, the multiplication operation may not be used when calculating the coordinates and. Also, in one embodiment, when a fractional sample coordinate is used, for a reference sample Linear interpolation can be performed.
- ISP Intelligent System for a coding block according to an embodiment to which the present invention is applied.
- the current coding block is a width (W) and
- FIG. 14(b) shows an example in which the current coding block is divided into 4 transform blocks in the vertical direction when the ISP mode is applied.
- FIG. 14(c) shows an example of applying the PDPC in units of each transform block divided in FIG. 14(b).
- the encoder/decoder is a transform block to which an ISP is applied in FIG. 14(b).
- the interpolation filter describes how to get the sample value from the reference sample. As an example,
- Encoder/decoder can use Cubic interpolation filter coefficient when the filter lag is 0, and Gaussian interpolation filter coefficient can be used when 1, Encoder/decoder uses the determined interpolation filter coefficient.
- the reference sample value can be determined and this value can be used as a predicted value.
- the encoder/decoder can set the filter flag to 1 for the block to which the transform block is a luma component and KP is applied.
- the encoder/decoder can be Decoder filter
- the encoder/decoder is a luma component, and for a transform block to which KP is applied, the filter flag value can be set (or determined) based on the width (W) and height (H) values of the block. In one embodiment, the encoder/decoder compares the number of samples in a block (W*H) with a predefined (or preset) specific reference value to flag a flag. 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- Encoder/decoder can compare the block width and height with each reference value to set the filter flag value differently.
- the conditions for determining the filter flag value are ( ⁇ > reference value and> reference value), ( ⁇ > It can be defined as a reference value or> reference value).
- the inequality sign is not limited to greater than or equal to the reference value, but can also be defined as the same case, greater than or equal to, less than or equal to.
- the reference values applied to and may be different, and different inequality signs may be applied.
- the filter flag value may be set depending on whether it falls within a specific block size range.
- the encoder/decoder is ⁇ ! For the block to which 5 is applied, mod (: can be applied. As an example, the encoder/decoder is! For the block to which 5 is applied, Based on You can decide whether or not to apply. In one embodiment, it is based on the number of samples in the block. 5 (: Conditions for determining whether to apply or not can be defined. For example, the above conditions
- the reference value may be a preset value.
- the condition for determining whether to apply Moi 5 ( Is defined as ), ( ⁇ > reference value or
- the inequality sign is not limited to greater than the reference value, but may be defined as right, small, or less.
- the conditions for deciding whether or not are defined as ( ⁇ > reference value and 3 reference value)
- the reference value applied to and may be defined as the same value may be defined as different values, may be defined as the same sign (or inequality sign), or may be defined as different signs.
- the encoding/decoding process may be performed.
- the encoder/decoder may be applied in units of coding blocks rather than units of transform blocks in applying all 01(s.
- the encoder/decoder is a!
- feeders 5 may be performed in the coding block unit instead of the conversion block.
- the encoder/decoder can apply all 01 (only when certain conditions defined for some of the modes to which it is applied are satisfied. For example, as in the above-described embodiment, when determining whether to apply based on the number of samples or width/height, reference values for the planar mode, horizontal mode, and vertical mode may be set differently.
- the encoder/decoder is 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- the filter flag indicates whether or not to apply filtering based on whether the ISP and/or PDPC are applied blocks, e.g. for blocks to which the ISP and PDPC are applied, the filter flag is 0. Or it can be set to a fixed value of 1. Alternatively, the filter length lag value can be determined by the MDIS (Mode dependent Intra smoothing) condition for the block to which the ISP and PDPC are applied, or the encoder/decoder has KP and PDPC. The filter flag value of the applied block and the filter flag value of the block to which only KP is applied can be applied differently.
- MDIS Mode dependent Intra smoothing
- the encoder/decoder may reset the intra prediction mode based on the width and height of the coding block.
- the encoder/decoder is The block to which the ISP is applied performs a re-interpretation process of the wide-angle mode based on the width and height of the coding block, and based on this, the reference sample filter flag can be set.
- the encoder/decoder can divide the block to which KP is applied/ The wide-angle mode application method can be set differently based on the size.
- a specific dividing direction is applied based on the width/height of the transform block or the width/height of the coding block, and other methods can be applied.
- the encoder/decoder can apply the wide-angle mode based on the width and height values of the divided transform blocks, for example, if the minimum of the width and height of the transform block is greater than, equal to or greater than the reference value.
- the wide-angle mode can be applied by using the height and width of the coding block, and the width and height of the transform block can be used to apply the wide-angle mode if it is equal to, smaller or smaller than the reference value.
- the width of the transform block If the minimum value of and height is greater than, equal to, or greater than the reference value, the wide-angle mode can be applied using the height and width of the conversion block, and if the minimum value is equal to, less than or less than the reference value, the wide-angle mode is applied by using the width and height of the coding block. can do.
- an encoder/decoder is a current block (coding block, coding Unit) into multiple transform blocks
- the coding block when the Intra subpartitions (ISP) mode is applied, the coding block may be divided into a plurality of transform blocks. Alternatively, if the size of the coding block is larger than the maximum transform size, the coding block may be divided into a plurality of transform blocks.
- the intra-sub-partition mode when the intra-sub-partition mode is applied, as shown in FIG. 15, the coding block is horizontally or vertically It can be divided into pseudorectangular transform blocks, and can be divided into two or four transform blocks.
- 16 is a diagram illustrating a process of encoding/decoding through a primary transform and a secondary transform according to an embodiment to which the present invention is applied.
- a coding block may be divided into a plurality of transform blocks, and an encoder/decoder may apply a transform to the divided transform block.
- FIG. 16 is a diagram in which two transforms are applied to the transform block. An example is shown.
- the Forward Primary Transform in Fig. 16 represents the first applied transform based on the encoder, that is, it may be referred to as a first order transform in the present invention.
- Forward Secondary Transform in Fig. 16 Denotes the second applied transformation on the basis of the encoder i.e. it can be referred to as a second order transformation in the present invention.
- 2nd transformation i.e. 2nd inverse transformation
- 1st transformation for the transform block inverse quantized with respect to the decoder side. I.e., first-order inverse transform
- the second-order transform is a Low Frequency Non-Separable Transform
- LFNST LFNST
- the conversion matrix (or conversion kernel, conversion type) used for the first conversion is a conversion known in conventional image compression technologies such as DCT-2, DST-7, DCT-8, etc. It can be a matrix.
- the quadratic transformation can be applied to a partial region within the transformation block.
- the partial region may be a 4x4 region or an 8x8 region.
- the position of the partial region is a coding block (or transform block).
- the width and height of the coding block are both greater than 4, it may be applied to the upper left 8x8 area, and if either side of the width and height is equal to 4, it may be applied to the upper left 4x4 area.
- the quadratic transformation can be applied to the luma component and chroma component of the block coded in intra mode.
- FIG. 17 shows a conversion kernel used for second-order conversion according to an embodiment of the present invention.
- a transformation kernel set (or transformation type set, transformation matrix set) can be determined based on the prediction mode used for intra prediction, and the table shown in Fig. 17 It can be defined in this encoder/decoder.
- the intra prediction mode can be defined from -14 to 83.
- a conversion kernel set may be determined for each grouped intra prediction mode. The same index may be applied to the luma component and the chroma component. Since the second-order conversion kernel set is determined based on the intra prediction mode, the conversion kernel set can be determined after acquiring (or determining) the intra prediction mode. This causes a dependency problem. Therefore, one embodiment of the present invention In, we explain how to get rid of this dependence.
- the encoder/decoder is in the intra prediction mode in consideration of the following.
- the encoder/decoder can determine the conversion kernel set based on the above-described items, and the above-described items can be used to determine the conversion kernel set as a combination of one or more.
- FIG. 18 illustrates a method of applying a quadratic transform in units of transform blocks according to an embodiment of the present invention.
- an encoder/decoder divides a coding block (or coding unit) into a plurality of transform blocks (or transform units), and applies a quadratic transform to each transform block. It is possible to apply a quadratic transformation to each transform block divided into a plurality of transform blocks in one coding unit.
- the size of each transform block is determined based on the segmentation method for the coding unit. ⁇ !
- the size of each transform block of the coding unit to which 5 is applied can be determined according to the vertical division or the horizontal division as shown in Fig. 15, and the size can be determined according to the number of additional divisions.
- the number of divisions in the block to which 5 is applied can be 2 or 4. In Fig.
- one coding unit is divided in the vertical direction into the block to which “all” is applied and the number of divisions is four.
- the size of the coding unit is ⁇
- the size of each transform block can be ⁇ /4 11.
- the size of the transform block can be used as the width and height to determine whether or not to apply the second transform.
- the encoder/decoder may use the same set of transform kernels for each transform block or use different sets of transform kernels.
- the segmented transform blocks have the same intra prediction mode and segmented blocks. If the size is the same, the same conversion kernel can be used. In the opposite case, the encoder/decoder can determine and use a kernel set for each conversion block.
- the luma component is converted into a plurality of conversion blocks. However, the chroma components may not be divided.
- both the luma transform block and the chroma transform block can use the same quadratic transform kernel set, and the size of the coding block to which the quadratic transform block is applied must be satisfied.
- the transform block size of and chroma may be different.
- the encoder/decoder can be applied to the 4x4 or 8x8 area according to the block size condition to which the 2nd transform block is applied.
- the encoder/decoder is the area applied to the luma transform. Chromas can also be used in the same area. Encoders/decoders can use different sets of conversion kernels, since the intra prediction modes of luma and chroma can be different.
- the size of the coding unit is larger than the maximum conversion size.
- the coding unit can be divided into a plurality of transform blocks without separate signaling.
- applying a second-order transform can reduce performance and increase complexity, thereby limiting the maximum coding block to which the second-order transform is applied.
- the block size can be the same as the maximum conversion size, or it can be used as a preset coding block size.
- the preset value can be 64, 32, 16, but is not limited thereto. It can be the length of the long side or the number of total samples.
- the encoder/decoder determines the size of the second-order transform block of the coding unit.
- Encoder/decoder is adaptive considering the ratio of horizontal to vertical/vertical to vertical ratio of the coding block.
- the area to which the quadratic transformation is applied can be determined without signaling.
- the current block is a square block. If not, the encoder/decoder can perform prediction using only the reference sample of the long side in the case of the IX: mode of intra prediction mode, in this case, the sample value of the short side may not be reflected at all in the prediction of the current coding block. In this case, the difference between the predicted value of the current block and the reference sample of the short side may be large. Therefore, the encoder/decoder can perform position-based filtering of the sample when performing intra prediction.
- the location-based filtering method of these samples can be referred to as all.! 5 ( : can be referred to as: all encoders/decoders.! 5 ( : is applied IX: in the mode, the first reference sample and the second reference sample are adjacent to the upper left. You can use the reference sample value to perform weight-based filtering. In this case, you can use Equations 7 to 12 below to derive the reference sample and/or the weight applied to each reference sample.
- predSamples[ x ][ y] clip1 Cmp( (refL[ x ][ y] * wL[ x] + refT[ x ][ y] * wT[ y]-p[ -1 ][ -1] * wTL[ x ][ y] + (64-wL[ x]-wT[ y] + wTL[ x ][ y])
- the left reference sample can be derived using Equation 7 and the right reference sample can be derived using Equation 8.
- the weight value applied to the right reference sample can be derived using Equation 9
- the weight value applied to the left reference sample can be derived using Equation W, and the weight value applied to the reference sample located at the upper left corner can be derived using Equation 11.
- the encoder/decoder can be derived using Equation 11. Based on the determined weight value, a prediction sample can be generated according to Equation 12.
- the encoder/decoder is not a square block.
- the weight value can be set differently from that of the long side.
- the weight value can be set to 16, 8, 4, etc. instead of 32. Or, used in Equations 9 and W described above.
- the scaled variable nScale can be used. Encoder/decoder can set its value according to the position of the long side and the short side.
- the encoder/decoder when using multiple reference line samples, the encoder/decoder
- PDPC can be applied in vertical mode and/or horizontal mode, or encoder/decoder can apply PDPC in vertical, horizontal, DC, PLANAR mode.
- FIG. 20 is a diagram showing a video signal processing method according to an embodiment of the present invention
- a decoder is mainly described, but the present invention is not limited thereto, and the video signal processing method according to the present embodiment can be applied in substantially the same manner to the encoder.
- the decoder is in the current block intra subpartition (ISP, Intra)
- the decoder generates prediction blocks of the transform blocks by performing intra prediction for each of the transform blocks (S2003).
- the decoder restores the current block based on the residual block of the transform block and the prediction block (S2004).
- the step of generating the prediction block includes a position-dependent intra prediction sample in units of transform blocks divided from the current block. 2020/175965 1»(:1 ⁇ 1 ⁇ 2020/002920
- 29 It may include the step of performing position-dependent intra prediction sample filtering.
- the step of generating the prediction block further includes a step of determining whether to apply the position-dependent intra prediction sample filtering based on at least one of the width and height of the transform block. can do.
- the width of the transform block is greater than or equal to a preset reference value, and the height of the transform block is If it is greater than or equal to the set reference value, it can be performed by deciding to apply the position-dependent intra prediction sample filtering.
- the residual block of the transform block can be derived by performing an inverse secondary transform and an inverse primary transform in units of the transform block.
- the step of determining whether or not the quadratic transform is applied to the current block When the quadratic transform is applied to the current block, predefined based on the intra prediction mode of the current block Deriving a quadratic transform kernel set applied to the current block from among quadratic transform kernel sets; determining a quadratic transform kernel applied to the current block in the determined quadratic transform kernel set; Inverse quadratic transform in units of the transform block.
- the method according to embodiments of the present invention is one or more ASICs (Application Specific Integrated Circuits), DSPs (Digital Signal Processors), DSPDs (Digital Signal Processing Devices), PLDs (Programmable Logic Devices), FPGAs (Field Programmable Gate Arrays), processors, controllers, microcontrollers, microprocessors, etc.
- ASICs Application Specific Integrated Circuits
- DSPs Digital Signal Processors
- DSPDs Digital Signal Processing Devices
- PLDs Programmable Logic Devices
- FPGAs Field Programmable Gate Arrays
- processors controllers, microcontrollers, microprocessors, etc.
- the method according to the embodiments of the present invention may be implemented in the form of a module, procedure, or function that performs the functions or operations described above.
- the software code is in a memory. It can be stored and driven by the processor.
- the memory can be located inside or outside the processor, and can send and receive data to and from the processor by a variety of known means.
- Some embodiments may be embodied in the form of a recording medium containing instructions executable by a computer, such as program modules executed by a computer.
- the computer-readable medium is any number of available media that can be accessed by the computer.
- Computer storage media includes both volatile and nonvolatile, removable and non-removable media implemented in any method or technology for storage of information such as computer-readable instructions, data structures, program modules or other data.
- It typically contains computer-readable instructions, data structures, or other data in a modulated data signal, such as program modules, or other transmission mechanisms, and includes any information carrier.
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Abstract
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| CN202410905514.5A CN118694974A (zh) | 2019-02-28 | 2020-02-28 | 基于帧内预测的视频信号处理方法和装置 |
| CN202080016690.3A CN113491116B (zh) | 2019-02-28 | 2020-02-28 | 基于帧内预测的视频信号处理方法和装置 |
| JP2021550241A JP7293376B2 (ja) | 2019-02-28 | 2020-02-28 | イントラ予測ベースのビデオ信号処理方法及び装置 |
| CN202410905478.2A CN118694973A (zh) | 2019-02-28 | 2020-02-28 | 基于帧内预测的视频信号处理方法和装置 |
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| US19/318,064 US20260006182A1 (en) | 2019-02-28 | 2025-09-03 | Intra prediction-based video signal processing method and device |
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| WO2020175965A1 (ko) * | 2019-02-28 | 2020-09-03 | 주식회사 윌러스표준기술연구소 | 인트라 예측 기반 비디오 신호 처리 방법 및 장치 |
| CN113557719B (zh) * | 2019-03-11 | 2023-09-12 | 日本放送协会 | 图像编码装置、图像解码装置和程序 |
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