WO2013155897A1 - Method and apparatus for loop filtering across slice or tile boundaries - Google Patents

Method and apparatus for loop filtering across slice or tile boundaries Download PDF

Info

Publication number
WO2013155897A1
WO2013155897A1 PCT/CN2013/071761 CN2013071761W WO2013155897A1 WO 2013155897 A1 WO2013155897 A1 WO 2013155897A1 CN 2013071761 W CN2013071761 W CN 2013071761W WO 2013155897 A1 WO2013155897 A1 WO 2013155897A1
Authority
WO
WIPO (PCT)
Prior art keywords
loop filter
flag
merge
block
information
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2013/071761
Other languages
French (fr)
Inventor
Chih-Ming Fu
Chia-Yang Tsai
Chih-Wei Hsu
Ching-Yeh Chen
Yu-Wen Huang
Shaw-Min Lei
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
MediaTek Inc
Original Assignee
MediaTek Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority to ES13778244.7T priority Critical patent/ES2641443T3/en
Priority to EP13778244.7A priority patent/EP2697973B1/en
Priority to HRP20171212TT priority patent/HRP20171212T1/en
Priority to LTEP13778244.7T priority patent/LT2697973T/en
Priority to SI201330732T priority patent/SI2697973T1/en
Priority to AU2013248857A priority patent/AU2013248857B2/en
Priority to US14/380,710 priority patent/US10511843B2/en
Priority to PL13778244T priority patent/PL2697973T3/en
Application filed by MediaTek Inc filed Critical MediaTek Inc
Priority to RS20170810A priority patent/RS56322B1/en
Priority to CN201380001126.4A priority patent/CN103518375B/en
Priority to DK13778244.7T priority patent/DK2697973T3/en
Publication of WO2013155897A1 publication Critical patent/WO2013155897A1/en
Anticipated expiration legal-status Critical
Priority to CY20171100857T priority patent/CY1119396T1/en
Ceased legal-status Critical Current

Links

Classifications

    • 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
    • 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
    • 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
    • H04N19/167—Position within a video image, e.g. region of interest [ROI]
    • 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
    • H04N19/174—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 slice, e.g. a line of blocks or a group of blocks
    • 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
    • H04N19/80—Details of filtering operations specially adapted for video compression, e.g. for pixel interpolation
    • H04N19/82—Details of filtering operations specially adapted for video compression, e.g. for pixel interpolation involving filtering within a prediction loop

Definitions

  • the present invention relates to video coding.
  • the present invention relates to video coding techniques associated with loop filtering and processing across slice or tile boundaries.
  • Motion estimation is an effective inter-frame coding technique to exploit temporal redundancy in video sequences.
  • Motion-compensated inter-frame coding has been widely used in various international video coding standards.
  • the motion estimation adopted in various coding standards is often a block-based technique, where motion information such as coding mode and motion vector is determined for each macroblock or similar block configuration.
  • intra-coding is also adaptively applied, where the picture is processed without reference to any other picture.
  • the inter-predicted or intra-predicted residues are usually further processed by transformation, quantization, and entropy coding to generate a compressed video bitstream.
  • coding artifacts are introduced, particularly in the quantization process.
  • additional processing can be applied to reconstructed video to enhance picture quality in newer coding systems.
  • the additional processing is often configured in an in-loop operation so that the encoder and the decoder may derive the same reference pictures.
  • Fig. 1 illustrates an exemplary adaptive inter/intra video coding system incorporating in- loop filtering process.
  • Motion Estimation (ME)/Motion Compensation (MC) 1 12 is used to provide prediction data based on video data from other picture or pictures.
  • Switch 1 14 selects Intra Prediction 1 10 or inter-prediction data from ME/MC 1 12 and the selected prediction data is supplied to Adder 1 16 to form prediction errors, also called prediction residues or residues.
  • the prediction error is then processed by Transformation (T) 118 followed by Quantization (Q) 120.
  • T Transformation
  • Q Quantization
  • the transformed and quantized residues are then coded by Entropy Encoder 122 to form a video bitstream corresponding to the compressed video data.
  • the bitstream associated with the transform coefficients is then packed with side information such as motion, mode, and other information associated with the image unit.
  • the side information may also be processed by entropy coding to reduce required bandwidth. Accordingly, the side information data is also provided to Entropy Encoder 122 as shown in Fig. 1 (the motion/mode paths to Entropy Encoder 122 are not shown).
  • a reconstruction loop is used to generate reconstructed pictures at the encoder end. Consequently, the transformed and quantized residues are processed by Inverse Quantization (IQ) 124 and Inverse Transformation (IT) 126 to recover the processed residues.
  • the processed residues are then added back to prediction data 136 by Reconstruction (REC) 128 to reconstruct the video data.
  • the reconstructed video data may be stored in Reference Picture Buffer 134 and be used for prediction of other frames.
  • incoming video data undergoes a series of processing in the encoding system.
  • the reconstructed video data from REC 128 may be subject to various impairments due to the series of processing. Accordingly, various loop processing is applied to the reconstructed video data before the reconstructed video data is used as prediction data in order to improve video quality.
  • HEVC High Efficiency Video Coding
  • Deblocking Filter (DF) 130 Sample Adaptive Offset (SAO) 131 and Adaptive Loop Filter (ALF) 132 have been developed to enhance picture quality.
  • the Deblocking Filter (DF) 130 is applied to boundary pixels and the DF processing is dependent on the underlying pixel data and coding information associated with the corresponding blocks.
  • DF 130 is applied to the reconstructed video first; SAO 131 is then applied to DF-processed video; and ALF 132 is applied to SAO-processed video.
  • the processing order among DF, SAO and ALF may be re-arranged.
  • the loop filtering process includes DF and SAO.
  • the coding process in HEVC is applied to each Largest Coding Unit (LCU).
  • LCU Largest Coding Unit
  • the LCU is adaptively partitioned into coding units using quadtree. Therefore, the LCU is also called coding tree block (CTB).
  • CTB coding tree block
  • DF is performed for each 8x8 block and in HEVC Test Model Version 5.0 (HM-5.0), the DF is applied to the 8x8 block boundaries.
  • HM-5.0 HEVC Test Model Version 5.0
  • SAO Sample Adaptive Offset
  • HM-5.0 Sample Adaptive Offset
  • SAO is regarded as a special case of filtering where the processing only applies to one pixel.
  • a picture may be divided into multiple LCU-aligned regions. Each region can select one SAO type among two Band Offset (BO) types, four Edge Offset (EO) types, and no processing (OFF).
  • BO Band Offset
  • EO Edge Offset
  • OFF no processing
  • BO uses the pixel intensity to classify the pixel into a band.
  • the pixel intensity range is equally divided into 32 bands, as shown in Fig. 2. Four consecutive bands are grouped together, where the starting band is indicated by sao_band_position.
  • An exemplary 4-band group 200 is illustrated in Fig. 2.
  • the first band position of this 4-band group is indicated by arrow 210.
  • pixel classification is first done to classify pixels into different groups (also called categories or classes). The pixel classification for each pixel is based on a 3x3 window, as shown in Fig. 3 where four configurations corresponding to 0°, 90°, 135°, and 45° are used for classification.
  • SAO is applied to luma and chroma components, and each of the luma components is independently processed. Similar to BO, one offset is derived for all pixels of each category except for category 4 of EO, where Category 4 is forced to use zero offset.
  • Table 1 lists the EO pixel classification, where "C" denotes the pixel to be classified.
  • Adaptive Loop Filtering (ALF) 132 is another in-loop filtering in HM-5.0 to enhance picture quality, as shown in Fig. 1. Multiple types of luma filter footprints and chroma filter footprints are used. The ALF operation is applied in the horizontal direction first. After horizontal ALF is performed, ALF is applied in the vertical direction. In HM-5.0, up to sixteen luma ALF filters and at most one chroma ALF filter can be used for each picture. In order to allow localization of ALF, there are two modes for luma pixels to select filters. One is a
  • Region-based Adaptation (RA) mode Region-based Adaptation (RA) mode
  • BA Block-based Adaptation
  • CUs Coding Units
  • CUs Coding Units
  • filter usage flags to enable or disable ALF operations locally.
  • chroma components since they are relatively flat, no local adaptation is used in HM-5.0, and the two chroma components of a picture share the same filter.
  • an ALF filter for a region may be selected from multiple ALF filters.
  • multiple filter footprints are used in HM-5.0.
  • the ALF information comprises identification for the selected ALF filter, the filter footprint and filter coefficients.
  • DF 130 is applied to reconstructed pixels from REC 128.
  • SAO 131 is then applied to DF-processed pixels and
  • ALF 132 is applied to S AO-processed pixels. While the processing sequence illustrated in Fig. 1 is DF, SAO and ALF, other processing sequence may also be used.
  • SAO may be applied to reconstructed pixels from REC 128, DF-processed reconstructed pixels (i.e., DF applied to the reconstructed pixels), ALF-processed reconstructed pixels (i.e., ALF applied to reconstructed pixels), both DF-processed and ALF- processed pixels (i.e., DF applied to the reconstructed pixels and ALF applied to the DF- processed reconstructed pixels) or both ALF-processed and DF-processed pixels (i.e., ALF applied to the reconstructed pixels and DF applied to the ALF-processed reconstructed pixels).
  • the "process ed-reconstructed pixels'' may refer to any type of the processed pixels mentioned above during SAO processing.
  • the "processed-reconstr cted pixels” also includes the reconstructed pixels from REC 128. In this case, it can be considered that a null processing is applied to the reconstructed pixels from REC 128.
  • the "processed- reconstructed pixels” may also refer to various types of the processed pixels by DF, SAO, both DF and SAO or both SAO and DF during ALF processing. Again, for ALF processing, the "processed-reconstr cted pixels” also includes the reconstructed pixels from REC 128.
  • SAO information of a current LCU can reuse the SAO information of a neighboring LCU above or to the left of the current LCU.
  • the SAO information sharing is indicated by merge syntax.
  • SAO syntax consists of sao_merge_left_flag, sao_merge_up_flag, sao_type_idx_luma, sao type index chroma, sao eo class luma, sao eo class chroma, sao_band_position, sao_offset_abs, and sao_offset_sign, as shown in Table 2.
  • Syntax sao_merge_left_fiag indicates whether the current LCU reuses the SAO parameters of the left LCU.
  • Syntax sao merge up flag indicates whether the current LCU reuses the SAO parameters of the upper LCU.
  • Syntax sao_type_idx represents the selected SAO type (sao_type_idx_luma and sao type idx chroma for luma component and chroma component respectively).
  • Syntax sao_offset_abs represents the offset magnitude and syntax sao_offset_sign represents the offset sign.
  • Syntax cldx indicates one of three color components. Similar mechanism can also be used to allow neighboring blocks to share the same ALF information. Table 2.
  • the LCUs in a picture can be partitioned into slices, where each slice consists of multiple horizontally consecutive LCUs.
  • HM-5.0 another image unit structure, named tile, is introduced, where a picture is partitioned into multiple tiles.
  • a picture may be divided into M tiles horizontally and N tiles vertically, where and N are integers greater than 0.
  • Each tile consists of multiple LCUs.
  • the processing sequence of the LCUs is according to the raster scan order.
  • the processing sequence of the tiles is also according to the raster scan order. Tile boundaries are often aligned with LCU boundaries.
  • Embodiments according to the present invention conditionally allow sharing of loop filter parameters.
  • sharing of loop filter information between the current block and a neighboring block is determined according to a condition. If the condition indicates that sharing of loop filter information is allowed, a merge flag is coded and incorporated in the video bitstream in an encoder or a merge flag is parsed from the video bitstream and decoded in a decoder.
  • the merge flag may be a merge-left flag or a merge-up flag. The merge-left flag is used if the neighboring block is adjacent to the left side of the current block and the merge-up flag is used if the neighboring block is adjacent to the upper side of the current block.
  • the condition depends on region partitioning of the picture, where region partitioning partitions the picture into regions.
  • the region may correspond to a slice or a tile.
  • the condition is set to indicate that sharing of loop filter information is allowed if the current block and the neighboring block are in a same region.
  • the condition is set to indicate that sharing of loop filter information is disallowed if the current block and the neighboring block are in different regions or if the neighboring block is not available.
  • the condition depends on whether the neighboring block is available.
  • the condition is set to indicate that sharing of loop filter information is allowed if the neighboring block is available.
  • the block may correspond to a coding tree block or a largest coding unit (LCU).
  • the loop filter information may correspond to SAO (sample adaptive offset) information, ALF (adaptive loop filter) information, or DF (deblocking filter) information.
  • SAO information may comprise SAO type information, SAO offset values, edge offset type, band offset starting band position, offset magnitude, and offset sign.
  • the ALF information may comprise ALF filter coefficients, ALF filter shape, filter selection index, filter classification method, and filter on/off control flag. Whether to allow sharing of loop filter information can be enabled or disabled based on a control flag.
  • the control flag may be in slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
  • FIG. 1 illustrates an exemplary video coding system using Inter/Intra prediction, where loop filter processing, including Deblocking Filter (DF), Sample Adaptive Offset (SAO) and Adaptive Loop Filter (ALF) is incorporated.
  • loop filter processing including Deblocking Filter (DF), Sample Adaptive Offset (SAO) and Adaptive Loop Filter (ALF) is incorporated.
  • DF Deblocking Filter
  • SAO Sample Adaptive Offset
  • ALF Adaptive Loop Filter
  • Fig. 2 illustrates an example of Band Offset (BO) by equally dividing the pixel intensity range into 32 bands.
  • BO Band Offset
  • Fig. 3 illustrates Edge Offset (EO) pixel classification based on a 3x3 window, with four configurations corresponding to 0°, 90°, 135°, and 45°.
  • EO Edge Offset
  • Fig. 4A illustrates a vertical slice/tile boundary where two neighboring blocks belong to two different slices/tiles.
  • Fig. 4B illustrates a horizontal slice/tile boundary where two neighboring blocks belong to two different slices/tiles.
  • FIG. 5 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video encoder incorporating an embodiment of the present invention.
  • FIG. 6 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video decoder incorporating an embodiment of the present invention.
  • Fig. 7 illustrates an exemplary flowchart of coding SAO/ ALF merge flag conditionally for a block in a slice/tile incorporating an embodiment of the present invention.
  • Fig. 8 illustrates an exemplary flowchart of parsing SAO/ALF merge flag conditionally for a block in a slice/tile incorporating an embodiment of the present invention.
  • embodiments according to the present invention conditionally allow sharing of loop filter information.
  • the SAO processing incorporates merge syntax to allow SAO parameter sharing between neighboring LCUs. It is also possible to use similar syntax to allow ALF parameter sharing between neighboring LCUs.
  • the present invention removes the data dependency associated with sharing of SAO, ALF, or DF information at slice/tile boundaries to allow independent slice/tile-based processing. If a block
  • a merge flag (merge-left or merge-up) will be coded in an encoder according to whether the current block shares (or re-use) the loop filter information with the neighboring block. The coded merge flag will be incorporated in the video bitstream. In the decoder side, the merge flag will be parsed and used for decoding.
  • FIG. 4A illustrates a vertical boundary 430 between tile 410 and tile 420.
  • block C i.e., LCU C
  • Fig. 4B illustrates an example of a horizontal slice/tile boundary 460 between slice/tile 440 and slice/tile 450.
  • block C at the top-side boundary of the slice/tile, no merge-up is allowed for loop filter information sharing because block C and its neighbor block B belong to different slices/tiles.
  • Fig. 5 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video encoder incorporating an embodiment of the present invention.
  • loop processing DF, SAO or ALF
  • the processed-reconstructed pixels may refer to various types of processed reconstructed pixels.
  • a current block of processed- reconstructed pixels is received from a media or a processor as shown in step 510.
  • the processed-reconstructed pixels may be stored in a media such as a RAM or DRAM in a system. Therefore, the processed-reconstructed pixels will have to be read back from a media.
  • the loop filter processing receives processed-reconstructed pixels directly from another processor (such as a central processing unit, a controller or a digital signal processor) responsible to generate the processed-reconstructed pixels.
  • the processed- reconstructed pixels will be received from a processor.
  • the block can be a coding tree block (CTB), an LCU or other block unit (such as macroblock or other types).
  • CTB coding tree block
  • LCU LCU
  • a decision is made in step 520 to determine whether to allow sharing of loop filter information between the current block and a neighboring block according to a condition.
  • the condition is checked in step 530. If the condition indicates that sharing of loop filter information is allowed, a merge flag is coded
  • step 540 and the merge flag is incorporated in the video bitstream (step 550). Otherwise, steps 540 and 550 are skipped and no side information for the merge flag is incorporated in the video bit stream.
  • the neighboring block may not be available in some cases.
  • the current block may be located at the boundary of a picture.
  • a respective neighboring block to the left or on the top of the current block may not exist since the respective neighboring block would be outside the picture.
  • sharing of loop filter parameters will be disallowed.
  • the loop filter information may correspond to SAO information, ALF information or DF information.
  • the SAO information may comprise SAO type information, SAO offset values, edge offset type, band offset starting band position, offset magnitude, and offset sign.
  • the ALF information may comprise ALF filter coefficients, ALF filter shape, filter selection index, filter classification method, and filter on/off control flag.
  • the condition depends on region partitioning of the picture, where the picture is partitioned into regions and the region may correspond to a slice or a tile.
  • the condition is set to indicate that sharing of loop filter information is allowed if the current block and the neighboring block are in a same slice/tile.
  • the condition is set to indicate that sharing of loop filter information is disallowed if the block and the neighboring block are in different slices/tiles or if the neighboring block is not available.
  • sharing of loop filter information is disallowed, there is no need to code the merge flag or to incorporate the merge flag in the video bitstream. Accordingly, side information for the associated merge flags can be saved.
  • the picture is not partitioned into regions and the condition depends on whether the neighboring block is available.
  • the condition is set to indicate that sharing of loop filter information is allowed if the neighboring block is available.
  • the condition is set to indicate that sharing of loop filter information is disallowed if the neighboring block is not available.
  • the conditional sharing of loop filter information between the current block and the neighboring block according to the condition can be enabled or disabled based on a control flag.
  • the control flag can be incorporated in the slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
  • Fig. 6 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video decoder incorporating an embodiment of the present invention.
  • a current block of processed-reconstructed pixels is received from a media or a processor as shown in step 610.
  • a decision is made in step 620 to determine whether to allow sharing of loop filter information between the current block and a neighboring block according to a condition.
  • the condition is checked in step 630. If the condition indicates that sharing of loop filter information is allowed, a merge flag is parsed from the video bitstream (step 640) and the merge flag is decoded (step 650). Otherwise, steps 640 and 650 are skipped.
  • the conditional sharing of loop filter information between the current block and the neighboring block according to the condition can be enabled or disabled based on a control flag.
  • the control flag can be parsed from the slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
  • FIG. 7 A flowchart for slice/tile based SAO/ALF processing at the encoder side incorporating an embodiment of the present invention is shown in Fig. 7.
  • a decision is made in step 710 to determine whether the current block and its neighboring block adjacent to the left side of the current block are in the same tile/slice. If the current block and the neighboring block adjacent to the left side of the current block are within the same slice/tile, the coding process for the SAO/ALF merge-left flag is performed as shown in step 720 and the coded merge-left flag is then incorporated in the video bitstream as shown in step 730. Otherwise, steps 720 and 730 are skipped and no side information for the merge-left flag is needed.
  • step 710 When the neighboring block adjacent to the left side of the current block is not available (for example, the current block being a boundary block at the left side of a slice/tileand the slice/tile is located at the left side boundary of a picture), the decision in step 710 will also take the "no" branch.
  • the SAO/ALF merge-left flag is coded according to whether the two respective blocks share loop filter information. The value of the SAO/ALF merge-left flag is indicative of whether the current block shares SAO/ALF parameters with the left neighboring block.
  • Similar process is applied to determine whether to allow merge-up flag for a current block to share loop filter information with a neighboring block adjacent to the top side of the current block as shown in step 740. If the current block and the neighboring block adjacent to the top side of the current block are in the same tile/slice, sharing of loop filter information is allowed. In this case, the coding process for the SAO/ALF merge-up flag is performed as shown in step 750 and the merge-up flag coded is then incorporated in the video bitstream as shown in step 760. Otherwise, steps 750 and 760 are skipped and no side information for the merge-up flag is needed.
  • step 740 When the neighboring block adjacent to the top side of the current block is not available (for example, the current block being a boundary block at the top side of a slice/tile and the slice/tile is located at the top side boundary of a picture), the decision in step 740 will also take the "no" branch.
  • step 740 if the current block is already merged to other block (i.e. left block), no merge-up processing or flag is needed.
  • step 750 the SAO/ALF merge-up flag is coded according to whether the two respective blocks share loop filter information. The value of the SAO/ALF merge-up flag is indicative of whether the current block shares SAO/ALF parameters with the upper neighboring block.
  • Fig. 7 The exemplary flowchart shown in Fig. 7 is for illustration purpose. A skilled person in the art may re-arrange, combine steps or split a step to practice the present invention without departing from the spirit of the present invention.
  • the merge-up flag can be checked first and then the merge-left flag. In this case, steps 740 through 760 are performed before steps 710 through 730.
  • the decision process for merge-left flag and merge-up flag can be performed first. After both merge-left flag and merge-up flag are determined, the two flags are coded and incorporated in the video bitstream.
  • FIG. 8 A flowchart for slice/tile based SAO/ALF processing at the decoder side incorporating an embodiment of the present invention is shown in Fig. 8.
  • a decision is made in step 810 to determine whether the current block and its neighboring block adjacent to the left side of the current block are in the same tile/slice. If the current block and the neighboring block adjacent to the left side of the current block are within the same slice/tile, the parsing process to extract the SAO/ALF merge-left flag is performed as shown in step 820 and the merge-left flag is decoded in step 830. Otherwise, steps 820 and 830 are skipped. When the neighboring block adjacent to the left side of the current block is not available, the decision in step 810 will also take the "no" branch.
  • step 840 Similar process is applied to check whether to allow merge-up flag for a current block to share loop filter information with a neighboring block adjacent to the top side of the current block as shown in step 840.
  • step 840 if the current block is already merged to other block (i.e. left block), no merge-up flag needs to be parsed and decoded. If the current block and the neighboring block adjacent to the top side of the current block are in the same tile/slice, sharing of loop filter information is allowed. In this case, the parsing process to extract the SAO/ALF merge-up flag is performed as shown in step 850 and the merge-up flag is decoded in step 860. Otherwise, steps 850 and 860 are skipped. When the neighboring block adjacent to the top side of the current block is not available, the decision in step 840 will also take the "no" branch.
  • Embodiment of the present invention as described above may be implemented in various hardware, software codes, or a combination of both.
  • an embodiment of the present invention can be a circuit integrated into a video compression chip or program code integrated into video compression software to perform the processing described herein.
  • An embodiment of the present invention may also be program code to be executed on a Digital Signal Processor (DSP) to perform the processing described herein.
  • DSP Digital Signal Processor
  • the invention may also involve a number of functions to be performed by a computer processor, a digital signal processor, a microprocessor, or field programmable gate array (FPGA). These processors can be configured to perform particular tasks according to the invention, by executing machine-readable software code or firmware code that defines the particular methods embodied by the invention.
  • the software code or firmware code may be developed in different programming languages and different formats or styles.
  • the software code may also be compiled for different target platforms.
  • different code formats, styles and languages of software codes and other means of configuring code to perform the tasks in accordance with the invention will not depart from the spirit and scope of the invention.

Landscapes

  • Engineering & Computer Science (AREA)
  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Compression Or Coding Systems Of Tv Signals (AREA)
  • Image Processing (AREA)
  • Paper (AREA)

Description

METHOD AND APPARATUS FOR LOOP FILTERING ACROSS SLICE OR
TILE BOUNDARIES
BACKGROUND OF THE INVENTION
Cross Reference To Related Applications [0001] The present invention claims priority to U.S. Provisional Patent Application, No.
61/624,812, filed on April 16, 2012, entitled "Prohibition against merging across slice/tile boundaries in SAO/ALF". The U.S. Provisional Patent Application is hereby incorporated by reference in its entirety.
Field of the Invention [0002] The present invention relates to video coding. In particular, the present invention relates to video coding techniques associated with loop filtering and processing across slice or tile boundaries.
Description of the Related Art
[0003] Motion estimation is an effective inter-frame coding technique to exploit temporal redundancy in video sequences. Motion-compensated inter-frame coding has been widely used in various international video coding standards. The motion estimation adopted in various coding standards is often a block-based technique, where motion information such as coding mode and motion vector is determined for each macroblock or similar block configuration. In addition, intra-coding is also adaptively applied, where the picture is processed without reference to any other picture. The inter-predicted or intra-predicted residues are usually further processed by transformation, quantization, and entropy coding to generate a compressed video bitstream. During the encoding process, coding artifacts are introduced, particularly in the quantization process. In order to alleviate the coding artifacts, additional processing can be applied to reconstructed video to enhance picture quality in newer coding systems. The additional processing is often configured in an in-loop operation so that the encoder and the decoder may derive the same reference pictures.
[0004] Fig. 1 illustrates an exemplary adaptive inter/intra video coding system incorporating in- loop filtering process. For inter-prediction, Motion Estimation (ME)/Motion Compensation (MC) 1 12 is used to provide prediction data based on video data from other picture or pictures. Switch 1 14 selects Intra Prediction 1 10 or inter-prediction data from ME/MC 1 12 and the selected prediction data is supplied to Adder 1 16 to form prediction errors, also called prediction residues or residues. The prediction error is then processed by Transformation (T) 118 followed by Quantization (Q) 120. The transformed and quantized residues are then coded by Entropy Encoder 122 to form a video bitstream corresponding to the compressed video data. The bitstream associated with the transform coefficients is then packed with side information such as motion, mode, and other information associated with the image unit. The side information may also be processed by entropy coding to reduce required bandwidth. Accordingly, the side information data is also provided to Entropy Encoder 122 as shown in Fig. 1 (the motion/mode paths to Entropy Encoder 122 are not shown). When the inter-prediction mode is used, a previously reconstructed reference picture or pictures have to be used to form prediction residues. Therefore, a reconstruction loop is used to generate reconstructed pictures at the encoder end. Consequently, the transformed and quantized residues are processed by Inverse Quantization (IQ) 124 and Inverse Transformation (IT) 126 to recover the processed residues. The processed residues are then added back to prediction data 136 by Reconstruction (REC) 128 to reconstruct the video data. The reconstructed video data may be stored in Reference Picture Buffer 134 and be used for prediction of other frames.
[0005] As shown in Fig. 1, incoming video data undergoes a series of processing in the encoding system. The reconstructed video data from REC 128 may be subject to various impairments due to the series of processing. Accordingly, various loop processing is applied to the reconstructed video data before the reconstructed video data is used as prediction data in order to improve video quality. In the High Efficiency Video Coding (HEVC) standard being developed, Deblocking Filter (DF) 130, Sample Adaptive Offset (SAO) 131 and Adaptive Loop Filter (ALF) 132 have been developed to enhance picture quality. The Deblocking Filter (DF) 130 is applied to boundary pixels and the DF processing is dependent on the underlying pixel data and coding information associated with the corresponding blocks. There is no DF-specific side information needs to be incorporated in the video bitstream. On the other hand, the SAO and ALF processing are adaptive, where filter information such as filter parameters and filter type may be dynamically changed according to the underlying video data. Therefore, filter information associated with SAO and ALF is incorporated in the video bitstream so that a decoder can properly recover the required information. Furthermore, filter information from SAO and ALF is provided to Entropy Encoder 122 for incorporation into the bitstream. In Fig.
1, DF 130 is applied to the reconstructed video first; SAO 131 is then applied to DF-processed video; and ALF 132 is applied to SAO-processed video. However, the processing order among DF, SAO and ALF may be re-arranged. In the High Efficiency Video Coding (HEVC) video standard being developed, the loop filtering process includes DF and SAO.
[0006] The coding process in HEVC is applied to each Largest Coding Unit (LCU). The LCU is adaptively partitioned into coding units using quadtree. Therefore, the LCU is also called coding tree block (CTB). In each leaf CU, DF is performed for each 8x8 block and in HEVC Test Model Version 5.0 (HM-5.0), the DF is applied to the 8x8 block boundaries. For each 8x8 block, horizontal filtering across vertical block boundaries is first applied, and then vertical filtering across horizontal block boundaries is applied.
[0007] Sample Adaptive Offset (SAO) 131 is also adopted in HM-5.0, as shown in Fig. 1. SAO is regarded as a special case of filtering where the processing only applies to one pixel. To apply SAO, a picture may be divided into multiple LCU-aligned regions. Each region can select one SAO type among two Band Offset (BO) types, four Edge Offset (EO) types, and no processing (OFF). For each to-be-processed (also called to-be-filtered) pixel, BO uses the pixel intensity to classify the pixel into a band. The pixel intensity range is equally divided into 32 bands, as shown in Fig. 2. Four consecutive bands are grouped together, where the starting band is indicated by sao_band_position. An exemplary 4-band group 200 is illustrated in Fig. 2. The first band position of this 4-band group is indicated by arrow 210. In EO, pixel classification is first done to classify pixels into different groups (also called categories or classes). The pixel classification for each pixel is based on a 3x3 window, as shown in Fig. 3 where four configurations corresponding to 0°, 90°, 135°, and 45° are used for classification. Upon classification of all pixels in a picture or a region, one offset is derived and transmitted for each group of pixels. In HM-5.0, SAO is applied to luma and chroma components, and each of the luma components is independently processed. Similar to BO, one offset is derived for all pixels of each category except for category 4 of EO, where Category 4 is forced to use zero offset. Table 1 below lists the EO pixel classification, where "C" denotes the pixel to be classified.
Table 1.
Figure imgf000005_0001
[0008] Adaptive Loop Filtering (ALF) 132 is another in-loop filtering in HM-5.0 to enhance picture quality, as shown in Fig. 1. Multiple types of luma filter footprints and chroma filter footprints are used. The ALF operation is applied in the horizontal direction first. After horizontal ALF is performed, ALF is applied in the vertical direction. In HM-5.0, up to sixteen luma ALF filters and at most one chroma ALF filter can be used for each picture. In order to allow localization of ALF, there are two modes for luma pixels to select filters. One is a
Region-based Adaptation (RA) mode, and the other is a Block-based Adaptation (BA) mode. In addition to the RA and BA for adaptation mode selection at picture level, Coding Units (CUs) larger than a threshold can be further controlled by filter usage flags to enable or disable ALF operations locally. As for the chroma components, since they are relatively flat, no local adaptation is used in HM-5.0, and the two chroma components of a picture share the same filter.
In MH-5.0, an ALF filter for a region may be selected from multiple ALF filters. In addition, multiple filter footprints are used in HM-5.0. For each ALF filter, there is a set of filter coefficients associated with the filter. Therefore, the ALF information comprises identification for the selected ALF filter, the filter footprint and filter coefficients.
[0009] As shown in Fig. 1, DF 130 is applied to reconstructed pixels from REC 128. SAO 131 is then applied to DF-processed pixels and ALF 132 is applied to S AO-processed pixels. While the processing sequence illustrated in Fig. 1 is DF, SAO and ALF, other processing sequence may also be used. For example, SAO may be applied to reconstructed pixels from REC 128, DF-processed reconstructed pixels (i.e., DF applied to the reconstructed pixels), ALF-processed reconstructed pixels (i.e., ALF applied to reconstructed pixels), both DF-processed and ALF- processed pixels (i.e., DF applied to the reconstructed pixels and ALF applied to the DF- processed reconstructed pixels) or both ALF-processed and DF-processed pixels (i.e., ALF applied to the reconstructed pixels and DF applied to the ALF-processed reconstructed pixels). For convenience, the "process ed-reconstructed pixels'' may refer to any type of the processed pixels mentioned above during SAO processing. The "processed-reconstr cted pixels" also includes the reconstructed pixels from REC 128. In this case, it can be considered that a null processing is applied to the reconstructed pixels from REC 128. Similarly, the "processed- reconstructed pixels" may also refer to various types of the processed pixels by DF, SAO, both DF and SAO or both SAO and DF during ALF processing. Again, for ALF processing, the "processed-reconstr cted pixels" also includes the reconstructed pixels from REC 128.
[0010] To reduce side-information associated with SAO processing, SAO information of a current LCU can reuse the SAO information of a neighboring LCU above or to the left of the current LCU. The SAO information sharing is indicated by merge syntax. In HM-8.0, SAO syntax consists of sao_merge_left_flag, sao_merge_up_flag, sao_type_idx_luma, sao type index chroma, sao eo class luma, sao eo class chroma, sao_band_position, sao_offset_abs, and sao_offset_sign, as shown in Table 2. Syntax sao_merge_left_fiag indicates whether the current LCU reuses the SAO parameters of the left LCU. Syntax sao merge up flag indicates whether the current LCU reuses the SAO parameters of the upper LCU. Syntax sao_type_idx represents the selected SAO type (sao_type_idx_luma and sao type idx chroma for luma component and chroma component respectively). Syntax sao_offset_abs represents the offset magnitude and syntax sao_offset_sign represents the offset sign. Syntax cldx indicates one of three color components. Similar mechanism can also be used to allow neighboring blocks to share the same ALF information. Table 2.
Figure imgf000007_0001
[0011] The LCUs in a picture can be partitioned into slices, where each slice consists of multiple horizontally consecutive LCUs. In HM-5.0, another image unit structure, named tile, is introduced, where a picture is partitioned into multiple tiles. For example, a picture may be divided into M tiles horizontally and N tiles vertically, where and N are integers greater than 0. Each tile consists of multiple LCUs. Within each tile, the processing sequence of the LCUs is according to the raster scan order. Within each picture, the processing sequence of the tiles is also according to the raster scan order. Tile boundaries are often aligned with LCU boundaries.
[0012] In some systems, it is desirable to process the slices or tiles independently. Independent slice/tile processing will allow parallel processing of multiple slices or tiles. For CTBs or LCUs located at a left boundary or a top boundary of the slice or tile, SAO or ALF parameter sharing with a neighboring LCU above or to the left of the current LCU implies data dependency on an LCU from another slice or tile. Therefore, it is desirable to develop SAO or ALF processing that enables slice/tile independent processing.
BRIEF SUMMARY OF THE INVENTION
[0013] A method and apparatus for loop filter processing of video data in a video encoder or decoder are disclosed. Embodiments according to the present invention conditionally allow sharing of loop filter parameters. According to one embodiment of the present invention, sharing of loop filter information between the current block and a neighboring block is determined according to a condition. If the condition indicates that sharing of loop filter information is allowed, a merge flag is coded and incorporated in the video bitstream in an encoder or a merge flag is parsed from the video bitstream and decoded in a decoder. The merge flag may be a merge-left flag or a merge-up flag. The merge-left flag is used if the neighboring block is adjacent to the left side of the current block and the merge-up flag is used if the neighboring block is adjacent to the upper side of the current block.
[0014] One aspect of the invention addresses the condition regarding whether to allow sharing of loop filter information. In one embodiment, the condition depends on region partitioning of the picture, where region partitioning partitions the picture into regions. For example, the region may correspond to a slice or a tile. The condition is set to indicate that sharing of loop filter information is allowed if the current block and the neighboring block are in a same region. The condition is set to indicate that sharing of loop filter information is disallowed if the current block and the neighboring block are in different regions or if the neighboring block is not available. In another embodiment, the condition depends on whether the neighboring block is available. The condition is set to indicate that sharing of loop filter information is allowed if the neighboring block is available. On the other hand, the condition is set to indicate that sharing of loop filter information is disallowed if the neighboring block is not available. When the condition is set to indicate that sharing of loop filter information is disallowed, an encoder does not incorporate the merge flag in the video bitstream and a decoder does not parse the merge flag from the video bitstream. [0015] The block may correspond to a coding tree block or a largest coding unit (LCU). The loop filter information may correspond to SAO (sample adaptive offset) information, ALF (adaptive loop filter) information, or DF (deblocking filter) information. The SAO information may comprise SAO type information, SAO offset values, edge offset type, band offset starting band position, offset magnitude, and offset sign. The ALF information may comprise ALF filter coefficients, ALF filter shape, filter selection index, filter classification method, and filter on/off control flag. Whether to allow sharing of loop filter information can be enabled or disabled based on a control flag. The control flag may be in slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
BRIEF DESCRIPTION OF DRAWINGS
[0016] Fig. 1 illustrates an exemplary video coding system using Inter/Intra prediction, where loop filter processing, including Deblocking Filter (DF), Sample Adaptive Offset (SAO) and Adaptive Loop Filter (ALF) is incorporated.
[0017] Fig. 2 illustrates an example of Band Offset (BO) by equally dividing the pixel intensity range into 32 bands.
[0018] Fig. 3 illustrates Edge Offset (EO) pixel classification based on a 3x3 window, with four configurations corresponding to 0°, 90°, 135°, and 45°.
[0019] Fig. 4A illustrates a vertical slice/tile boundary where two neighboring blocks belong to two different slices/tiles.
[0020] Fig. 4B illustrates a horizontal slice/tile boundary where two neighboring blocks belong to two different slices/tiles.
[0021] Fig. 5 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video encoder incorporating an embodiment of the present invention.
[0022] Fig. 6 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video decoder incorporating an embodiment of the present invention.
[0023] Fig. 7 illustrates an exemplary flowchart of coding SAO/ ALF merge flag conditionally for a block in a slice/tile incorporating an embodiment of the present invention.
[0024] Fig. 8 illustrates an exemplary flowchart of parsing SAO/ALF merge flag conditionally for a block in a slice/tile incorporating an embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
[0025] In order to allow independent slice/tile processing for systems with loop filters such as SAO, ALF, and DF, embodiments according to the present invention conditionally allow sharing of loop filter information. As mentioned before, the SAO processing incorporates merge syntax to allow SAO parameter sharing between neighboring LCUs. It is also possible to use similar syntax to allow ALF parameter sharing between neighboring LCUs. The present invention removes the data dependency associated with sharing of SAO, ALF, or DF information at slice/tile boundaries to allow independent slice/tile-based processing. If a block
(a CTB or LCU) and an adjacent left block are within a same slice or tile, sharing of SAO, ALF, or DF information will be allowed. Similarly, if a block and an adjacent upper block are within a same slice or tile, sharing of SAO, ALF, or DF information will be allowed. When sharing of loop filter information is allowed, a merge flag (merge-left or merge-up) will be coded in an encoder according to whether the current block shares (or re-use) the loop filter information with the neighboring block. The coded merge flag will be incorporated in the video bitstream. In the decoder side, the merge flag will be parsed and used for decoding. If the block is located at the left-side boundary or the top-side boundary of a slice/tile, sharing of loop filter information with an adjacent left block or upper block respectively would require the loop filter information from another slice or tile. Therefore, sharing of loop filter information is disallowed in this case. When sharing of loop filter information is disallowed, the merge flag (either merge-left or merge-up) will not be used. Accordingly, an encoder will not code the merge flag nor incorporate the merge flag in the video bitstream. At the decoder side, there is no need to parse the merge flag. Accordingly, side information associated with the respective merge flag can be saved.
[0026] Examples of slice/tile independent processing are shown in Fig. 4A and Fig. 4B. Fig. 4A illustrates a vertical boundary 430 between tile 410 and tile 420. For block C (i.e., LCU C) at the left-side boundary of tile 420, no merge-left is allowed for loop filter information sharing because block C and its neighboring block A belong to different tiles. Fig. 4B illustrates an example of a horizontal slice/tile boundary 460 between slice/tile 440 and slice/tile 450. For block C at the top-side boundary of the slice/tile, no merge-up is allowed for loop filter information sharing because block C and its neighbor block B belong to different slices/tiles.
[0027] Fig. 5 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video encoder incorporating an embodiment of the present invention. As shown in Fig. 1 and described in associated text, loop processing (DF, SAO or ALF) is always applied to reconstructed pixels. Furthermore, as mentioned before, the processed-reconstructed pixels may refer to various types of processed reconstructed pixels. A current block of processed- reconstructed pixels is received from a media or a processor as shown in step 510. The processed-reconstructed pixels may be stored in a media such as a RAM or DRAM in a system. Therefore, the processed-reconstructed pixels will have to be read back from a media. Also it is possible that the loop filter processing receives processed-reconstructed pixels directly from another processor (such as a central processing unit, a controller or a digital signal processor) responsible to generate the processed-reconstructed pixels. In this case, the processed- reconstructed pixels will be received from a processor. The block can be a coding tree block (CTB), an LCU or other block unit (such as macroblock or other types). A decision is made in step 520 to determine whether to allow sharing of loop filter information between the current block and a neighboring block according to a condition. The condition is checked in step 530. If the condition indicates that sharing of loop filter information is allowed, a merge flag is coded
(step 540) and the merge flag is incorporated in the video bitstream (step 550). Otherwise, steps 540 and 550 are skipped and no side information for the merge flag is incorporated in the video bit stream.
[0028] The neighboring block may not be available in some cases. For example, the current block may be located at the boundary of a picture. A respective neighboring block to the left or on the top of the current block may not exist since the respective neighboring block would be outside the picture. In this case, sharing of loop filter parameters will be disallowed. The loop filter information may correspond to SAO information, ALF information or DF information. The SAO information may comprise SAO type information, SAO offset values, edge offset type, band offset starting band position, offset magnitude, and offset sign. The ALF information may comprise ALF filter coefficients, ALF filter shape, filter selection index, filter classification method, and filter on/off control flag. In one embodiment, the condition depends on region partitioning of the picture, where the picture is partitioned into regions and the region may correspond to a slice or a tile. In slice/tile based loop-filter processing, the condition is set to indicate that sharing of loop filter information is allowed if the current block and the neighboring block are in a same slice/tile. On the other hand, the condition is set to indicate that sharing of loop filter information is disallowed if the block and the neighboring block are in different slices/tiles or if the neighboring block is not available. When sharing of loop filter information is disallowed, there is no need to code the merge flag or to incorporate the merge flag in the video bitstream. Accordingly, side information for the associated merge flags can be saved. This feature is useful even for non-slice/tile based loop filter processing. In another embodiment, the picture is not partitioned into regions and the condition depends on whether the neighboring block is available. The condition is set to indicate that sharing of loop filter information is allowed if the neighboring block is available. On the other hand, the condition is set to indicate that sharing of loop filter information is disallowed if the neighboring block is not available.
[0029] The conditional sharing of loop filter information between the current block and the neighboring block according to the condition can be enabled or disabled based on a control flag. The control flag can be incorporated in the slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
[0030] Fig. 6 illustrates an exemplary flowchart of sharing loop filter information conditionally for a video decoder incorporating an embodiment of the present invention. A current block of processed-reconstructed pixels is received from a media or a processor as shown in step 610. A decision is made in step 620 to determine whether to allow sharing of loop filter information between the current block and a neighboring block according to a condition. The condition is checked in step 630. If the condition indicates that sharing of loop filter information is allowed, a merge flag is parsed from the video bitstream (step 640) and the merge flag is decoded (step 650). Otherwise, steps 640 and 650 are skipped.
[0031] In the case that the neighboring block is not available, sharing of loop filter parameters will be disallowed. In a decoder, the decision regarding whether sharing of loop filter information is allowed is the same as that for the encoder. When sharing of loop filter information is disallowed, there is no need to parse the merge flag from the video bitstream or to decode the merge flag.
[0032] The conditional sharing of loop filter information between the current block and the neighboring block according to the condition can be enabled or disabled based on a control flag. The control flag can be parsed from the slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
[0033] A flowchart for slice/tile based SAO/ALF processing at the encoder side incorporating an embodiment of the present invention is shown in Fig. 7. A decision is made in step 710 to determine whether the current block and its neighboring block adjacent to the left side of the current block are in the same tile/slice. If the current block and the neighboring block adjacent to the left side of the current block are within the same slice/tile, the coding process for the SAO/ALF merge-left flag is performed as shown in step 720 and the coded merge-left flag is then incorporated in the video bitstream as shown in step 730. Otherwise, steps 720 and 730 are skipped and no side information for the merge-left flag is needed. When the neighboring block adjacent to the left side of the current block is not available (for example, the current block being a boundary block at the left side of a slice/tileand the slice/tile is located at the left side boundary of a picture), the decision in step 710 will also take the "no" branch. In step 720, the SAO/ALF merge-left flag is coded according to whether the two respective blocks share loop filter information. The value of the SAO/ALF merge-left flag is indicative of whether the current block shares SAO/ALF parameters with the left neighboring block.
[0034] Similar process is applied to determine whether to allow merge-up flag for a current block to share loop filter information with a neighboring block adjacent to the top side of the current block as shown in step 740. If the current block and the neighboring block adjacent to the top side of the current block are in the same tile/slice, sharing of loop filter information is allowed. In this case, the coding process for the SAO/ALF merge-up flag is performed as shown in step 750 and the merge-up flag coded is then incorporated in the video bitstream as shown in step 760. Otherwise, steps 750 and 760 are skipped and no side information for the merge-up flag is needed. When the neighboring block adjacent to the top side of the current block is not available (for example, the current block being a boundary block at the top side of a slice/tile and the slice/tile is located at the top side boundary of a picture), the decision in step 740 will also take the "no" branch. In step 740, if the current block is already merged to other block (i.e. left block), no merge-up processing or flag is needed. In step 750, the SAO/ALF merge-up flag is coded according to whether the two respective blocks share loop filter information. The value of the SAO/ALF merge-up flag is indicative of whether the current block shares SAO/ALF parameters with the upper neighboring block.
[0035] The exemplary flowchart shown in Fig. 7 is for illustration purpose. A skilled person in the art may re-arrange, combine steps or split a step to practice the present invention without departing from the spirit of the present invention. For example, the merge-up flag can be checked first and then the merge-left flag. In this case, steps 740 through 760 are performed before steps 710 through 730. In another example, the decision process for merge-left flag and merge-up flag can be performed first. After both merge-left flag and merge-up flag are determined, the two flags are coded and incorporated in the video bitstream.
[0036] A flowchart for slice/tile based SAO/ALF processing at the decoder side incorporating an embodiment of the present invention is shown in Fig. 8. A decision is made in step 810 to determine whether the current block and its neighboring block adjacent to the left side of the current block are in the same tile/slice. If the current block and the neighboring block adjacent to the left side of the current block are within the same slice/tile, the parsing process to extract the SAO/ALF merge-left flag is performed as shown in step 820 and the merge-left flag is decoded in step 830. Otherwise, steps 820 and 830 are skipped. When the neighboring block adjacent to the left side of the current block is not available, the decision in step 810 will also take the "no" branch. Similar process is applied to check whether to allow merge-up flag for a current block to share loop filter information with a neighboring block adjacent to the top side of the current block as shown in step 840. In step 840, if the current block is already merged to other block (i.e. left block), no merge-up flag needs to be parsed and decoded. If the current block and the neighboring block adjacent to the top side of the current block are in the same tile/slice, sharing of loop filter information is allowed. In this case, the parsing process to extract the SAO/ALF merge-up flag is performed as shown in step 850 and the merge-up flag is decoded in step 860. Otherwise, steps 850 and 860 are skipped. When the neighboring block adjacent to the top side of the current block is not available, the decision in step 840 will also take the "no" branch.
[0037] The above description is presented to enable a person of ordinary skill in the art to practice the present invention as provided in the context of a particular application and its requirement. Various modifications to the described embodiments will be apparent to those with skill in the art, and the general principles defined herein may be applied to other embodiments. Therefore, the present invention is not intended to be limited to the particular embodiments shown and described, but is to be accorded the widest scope consistent with the principles and novel features herein disclosed. In the above detailed description, various specific details are illustrated in order to provide a thorough understanding of the present invention. Nevertheless, it will be understood by those skilled in the art that the present invention may be practiced.
[0038] Embodiment of the present invention as described above may be implemented in various hardware, software codes, or a combination of both. For example, an embodiment of the present invention can be a circuit integrated into a video compression chip or program code integrated into video compression software to perform the processing described herein. An embodiment of the present invention may also be program code to be executed on a Digital Signal Processor (DSP) to perform the processing described herein. The invention may also involve a number of functions to be performed by a computer processor, a digital signal processor, a microprocessor, or field programmable gate array (FPGA). These processors can be configured to perform particular tasks according to the invention, by executing machine-readable software code or firmware code that defines the particular methods embodied by the invention. The software code or firmware code may be developed in different programming languages and different formats or styles. The software code may also be compiled for different target platforms. However, different code formats, styles and languages of software codes and other means of configuring code to perform the tasks in accordance with the invention will not depart from the spirit and scope of the invention.
[0039] The invention may be embodied in other specific forms without departing from its spirit or essential characteristics. The described examples are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is therefore, indicated by the appended claims rather than by the foregoing description. All changes which come within the meaning and range of equivalency of the claims are to be embraced within their scope.

Claims

1 A method for loop filter processing of video data in a video decoder, the method comprising:
receiving a block of processed-reconstructed pixels associated with a picture from a media or a processor;
determining whether to allow sharing of loop filter information between the block and a neighboring block according to a condition, wherein the condition depends on region partitioning of the picture;
parsing a merge flag from a video bitstream if the condition indicates said sharing of loop filter information being allowed; and
decoding the merge flag if the condition indicates said sharing of loop filter information being allowed.
2 The method of Claim 1, wherein the merge flag consists of a merge-left flag and a merge-up flag.
3 The method of Claim 2, wherein the merge-left flag is used if the neighboring block is adjacent to left side of the block.
4 The method of Claim 2, wherein the merge-up flag is used if the neighboring block is adjacent to upper side of the block.
5 The method of Claim 2, wherein the merge-up flag is used if merge-left flag indicated said sharing of loop filter information being not allowed.
6 The method of Claim 1, wherein said region partitioning partitions the picture into regions and the region corresponds to a slice or a tile.
7 The method of Claim 1, wherein the condition is set to indicate said sharing of loop filter information being disallowed if the block and the neighboring block are in different regions or if the neighboring block is not available.
8 The method of Claim 1, wherein the block corresponds to a coding tree block or a largest coding unit (LCU).
9 The method of Claim 1 , wherein the loop filter information corresponds to SAO (sample adaptive offset) information, ALF (adaptive loop filter) information, or DF (deblocking filter) information.
10 The method of Claim 9, wherein the SAO information comprises SAO type information, SAO offset values, edge offset type, band offset starting band position, offset magnitude, and offset sign.
11 The method of Claim 9, wherein the ALF information comprises filter coefficients, and filter shape, filter selection index, filter classification method, and filter on/off control flag. 12 The method of Claim 1, wherein said determining whether to allow sharing of loop filter information between the block and the neighboring block according to the condition is enabled or disabled based on a control flag.
13 The method of Claim 12, wherein the control flag is parsed from slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
14 A method for loop filter processing of video data in a video encoder, the method comprising:
receiving a block of processed-reconstructed pixels associated with a picture from a media or a processor;
determining whether to allow sharing of loop filter information between the block and a neighboring block according to a condition, wherein the condition depends on region partitioning of the picture;
coding a merge flag if the condition indicates said sharing of loop filter information being allowed; and
incorporating the merge flag in a video bitstream if the condition indicates said sharing of loop filter information being allowed.
15 The method of Claiml4, wherein the merge flag consists of a merge-left flag and a merge-up flag.
16 The method of Claim 15, wherein the merge-up flag is used if merge-left flag indicated said sharing of loop filter information being not allowed.
17 The method of Claim 14, wherein said region partitioning partitions the picture into regions and the region corresponds to a slice or a tile.
18 The method of Claim 14, wherein the condition is set to indicate said sharing of loop filter information being disallowed if the block and the neighboring block are in different regions or if the neighboring block is not available.
19 The method of Claim 14, wherein the block corresponds to a coding tree block or a largest coding unit (LCU).
20 The method of Claim 14, wherein the loop filter information corresponds to SAO (sample adaptive offset) information, ALF (adaptive loop filter) information, or DF (deblocking filter) information.
21 The method of Claim 14, wherein said determining whether to allow sharing of loop filter information between the block and the neighboring block according to the condition is enabled or disabled based on a control flag.
22 The method of Claim21, wherein the control flag is incorporated in slice header, picture parameter set, adaptation parameters set, sequence parameters set, or video parameter set of the video bitstream.
23 An apparatus for loop filter processing of video data in a video decoder, the apparatus comprising:
means for receiving a block of processed-reconstructed pixels associated with a picture from a media or a processor;
means for determining whether to allow sharing of loop filter information between the block and a neighboring block according to a condition, wherein the condition depends on region partitioning of the picture;
means for parsing a merge flag from a video bitstream if the condition indicates said sharing of loop filter information being allowed; and
means for decoding the merge flag if the condition indicates said sharing of loop filter information being allowed.
24 An apparatus for loop filter processing of video data in a video encoder, the apparatus comprising:
means for receiving a block of processed-reconstructed pixels associated with a picture from a media or a processor;
means for determining whether to allow sharing of loop filter information between the block and a neighboring block according to a condition, wherein the condition depends on region partitioning of the picture;
means for coding a merge flag if the condition indicates said sharing of loop filter information being allowed; and
means for incorporating the merge flag in a video bitstream if the condition indicates said sharing of loop filter information being allowed.
PCT/CN2013/071761 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries Ceased WO2013155897A1 (en)

Priority Applications (12)

Application Number Priority Date Filing Date Title
US14/380,710 US10511843B2 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries
HRP20171212TT HRP20171212T1 (en) 2012-04-16 2013-02-22 PROCEDURE AND APPAREL FOR FILTERING THE LOOK THROUGH BORDER OR TILE BORDERS
LTEP13778244.7T LT2697973T (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries
SI201330732T SI2697973T1 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries
AU2013248857A AU2013248857B2 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries
PL13778244T PL2697973T3 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries
RS20170810A RS56322B1 (en) 2012-04-16 2013-02-22 PROCEDURE AND APPLIANCE FOR FILTERING IN A HOOK THROUGH BORDERS OR TILES
ES13778244.7T ES2641443T3 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtration through cutting or part limits
EP13778244.7A EP2697973B1 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries
CN201380001126.4A CN103518375B (en) 2012-04-16 2013-02-22 Loop filter processing method for video data and apparatus thereof
DK13778244.7T DK2697973T3 (en) 2012-04-16 2013-02-22 Method and device for loop filtration across slab or tile borders
CY20171100857T CY1119396T1 (en) 2012-04-16 2017-08-09 METHOD AND APPLIANCE FOR LOOF FILTERING ON SLINE / TILE LIMITS

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201261624812P 2012-04-16 2012-04-16
US61/624,812 2012-04-16

Publications (1)

Publication Number Publication Date
WO2013155897A1 true WO2013155897A1 (en) 2013-10-24

Family

ID=49382887

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2013/071761 Ceased WO2013155897A1 (en) 2012-04-16 2013-02-22 Method and apparatus for loop filtering across slice or tile boundaries

Country Status (15)

Country Link
US (1) US10511843B2 (en)
EP (1) EP2697973B1 (en)
CN (2) CN103518375B (en)
AU (1) AU2013248857B2 (en)
CY (1) CY1119396T1 (en)
DK (1) DK2697973T3 (en)
ES (1) ES2641443T3 (en)
HR (1) HRP20171212T1 (en)
HU (1) HUE034384T2 (en)
LT (1) LT2697973T (en)
PL (1) PL2697973T3 (en)
PT (1) PT2697973T (en)
RS (1) RS56322B1 (en)
SI (1) SI2697973T1 (en)
WO (1) WO2013155897A1 (en)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014097596A1 (en) * 2012-12-19 2014-06-26 パナソニック株式会社 Image encoding method, image decoding method, image encoding device, and image decoding device
KR20180048735A (en) * 2015-09-29 2018-05-10 엘지전자 주식회사 Image filtering method and apparatus in video coding system
CN114449274A (en) * 2020-08-13 2022-05-06 北京达佳互联信息技术有限公司 Chroma codec enhancement in cross-component sample offset compensation
US12445646B2 (en) 2017-04-11 2025-10-14 Interdigital Vc Holdings, Inc. 360-degree video coding using face continuities
US12501081B2 (en) 2017-09-20 2025-12-16 Interdigital Vc Holdings, Inc. Handling face discontinuities in 360-degree video coding

Families Citing this family (39)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9277194B2 (en) * 2011-11-08 2016-03-01 Texas Instruments Incorporated Method and apparatus for image and video coding using hierarchical sample adaptive band offset
US9930340B2 (en) 2014-06-20 2018-03-27 Qualcomm Incorporated Systems and methods for selectively performing a bitstream conformance check
WO2016043933A1 (en) 2014-09-15 2016-03-24 Mediatek Inc. Method of deblocking for intra block copy in video coding
CN104486630B (en) * 2014-12-16 2017-10-20 北京金山云网络技术有限公司 H.265 in Video coding under SAO patterns offset statistical method
CN107431822B (en) 2015-06-09 2019-11-29 华为技术有限公司 Image coding/decoding method and equipment
US9872026B2 (en) * 2015-06-12 2018-01-16 Intel Corporation Sample adaptive offset coding
US10419755B2 (en) * 2016-05-16 2019-09-17 Qualcomm Incorporated Confusion of multiple filters in adaptive loop filtering in video coding
EP3485643B1 (en) * 2016-07-14 2023-09-06 Koninklijke KPN N.V. Video coding
WO2019009590A1 (en) 2017-07-03 2019-01-10 김기백 Method and device for decoding image by using partition unit including additional region
CN116248868B (en) * 2017-07-03 2025-11-25 汉阳大学校产学协力团 Image decoding method and apparatus utilizing segmentation units including additional regions
WO2019026721A1 (en) * 2017-08-01 2019-02-07 Sharp Kabushiki Kaisha Systems and methods for filtering reconstructed video data using adaptive loop filtering techniques
CN110662035B (en) * 2018-06-29 2022-06-10 北京字节跳动网络技术有限公司 Filtering of zero units
TWI714153B (en) * 2018-06-29 2020-12-21 大陸商北京字節跳動網絡技術有限公司 Definition of zero unit
JP7702786B2 (en) * 2018-07-11 2025-07-04 インターデジタル ヴイシー ホールディングス, インコーポレイテッド In-loop filter with multiple regions
WO2020056354A1 (en) 2018-09-14 2020-03-19 Futurewei Technologies, Inc. Tile based addressing in video coding
WO2020094154A1 (en) * 2018-11-09 2020-05-14 Beijing Bytedance Network Technology Co., Ltd. Improvements for region based adaptive loop filter
US11159791B2 (en) * 2019-03-16 2021-10-26 Mediatek Inc. Method and apparatus for signaling adaptive loop filter parameters in video coding
JP7433346B2 (en) 2019-06-14 2024-02-19 北京字節跳動網絡技術有限公司 Handling video unit boundaries and virtual boundaries
CN117478878A (en) 2019-07-09 2024-01-30 北京字节跳动网络技术有限公司 Sample point determination for adaptive loop filtering
WO2021004542A1 (en) 2019-07-11 2021-01-14 Beijing Bytedance Network Technology Co., Ltd. Sample padding in adaptive loop filtering
JP7361196B2 (en) 2019-07-15 2023-10-13 北京字節跳動網絡技術有限公司 Classification in adaptive loop filtering
US11641465B2 (en) * 2019-07-25 2023-05-02 Hfi Innovation Inc. Method and apparatus of cross-component adaptive loop filtering with virtual boundary for video coding
CN112312139B (en) * 2019-08-02 2024-05-24 扬智科技股份有限公司 Loop filtering method and decoding device for video decoding
MX2022001989A (en) 2019-08-16 2022-05-11 Huawei Tech Co Ltd ALF APS RESTRICTIONS ON VIDEO ENCODING.
MX2022002815A (en) 2019-09-14 2022-04-06 Bytedance Inc QUANTIFICATION PARAMETER FOR CHROMA UNLOCK FILTERING.
JP7578106B2 (en) * 2019-09-20 2024-11-06 株式会社Jvcケンウッド Image conversion device and image decoding device
KR102649584B1 (en) 2019-09-21 2024-03-21 베이징 바이트댄스 네트워크 테크놀로지 컴퍼니, 리미티드 Size limitations based on chroma intra mode
WO2021052508A1 (en) 2019-09-22 2021-03-25 Beijing Bytedance Network Technology Co., Ltd. Padding process in adaptive loop filtering
JP7408787B2 (en) * 2019-09-24 2024-01-05 ホアウェイ・テクノロジーズ・カンパニー・リミテッド Filter flags for subpicture deblocking
EP4022910A4 (en) * 2019-09-27 2022-11-16 Beijing Bytedance Network Technology Co., Ltd. ADAPTIVE LOOP FILTERING BETWEEN DIFFERENT VIDEO UNITS
KR102762212B1 (en) 2019-10-10 2025-02-07 두인 비전 컴퍼니 리미티드 Padding process at unavailable sample locations in adaptive loop filtering
EP4055827A4 (en) 2019-12-09 2023-01-18 ByteDance Inc. USING QUANTIFICATION GROUPS IN VIDEO CODING
WO2021118265A1 (en) * 2019-12-12 2021-06-17 엘지전자 주식회사 Video or image coding employing adaptive loop filter
KR102750625B1 (en) 2020-01-05 2025-01-09 두인 비전 컴퍼니 리미티드 General constraint information for video coding
EP4094438A4 (en) 2020-02-24 2023-03-29 ByteDance Inc. DERIVING THE HEIGHT OF A SUB-PICTURE
CN115211125B (en) 2020-03-03 2025-02-18 字节跳动有限公司 Low frequency inseparable transform signaling notification in video codec
EP4118831A4 (en) 2020-04-10 2023-12-27 Beijing Bytedance Network Technology Co., Ltd. MINIMUM QUANTIZATION ALLOWED FOR TRANSFORMATION SKIP BLOCKS IN VIDEO CODING
CN112927311B (en) * 2021-02-24 2022-06-03 上海哔哩哔哩科技有限公司 Data processing method and device of sideband compensation mode of sample point adaptive compensation
US11785213B2 (en) * 2021-03-12 2023-10-10 Tencent America LLC Method and apparatus for video filtering

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1944974A1 (en) * 2007-01-09 2008-07-16 Matsushita Electric Industrial Co., Ltd. Position dependent post-filter hints
CN101517909A (en) * 2006-09-15 2009-08-26 飞思卡尔半导体公司 Video information processing system with selective chroma deblock filtering
CN102150428A (en) * 2008-09-11 2011-08-10 谷歌公司 System and method for video encoding using adaptive segmentation
US20110274158A1 (en) * 2010-05-10 2011-11-10 Mediatek Inc. Method and Apparatus of Adaptive Loop Filtering

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2154918C1 (en) * 1998-08-01 2000-08-20 Самсунг Электроникс Ко., Лтд. Method and device for loop filtration of image data
US7620261B2 (en) * 2004-11-23 2009-11-17 Stmicroelectronics Asia Pacific Pte. Ltd. Edge adaptive filtering system for reducing artifacts and method
MX2009006404A (en) * 2006-12-18 2009-06-23 Koninkl Philips Electronics Nv Image compression and decompression.
US8265144B2 (en) * 2007-06-30 2012-09-11 Microsoft Corporation Innovations in video decoder implementations
US8254455B2 (en) * 2007-06-30 2012-08-28 Microsoft Corporation Computing collocated macroblock information for direct mode macroblocks
US9648325B2 (en) * 2007-06-30 2017-05-09 Microsoft Technology Licensing, Llc Video decoding implementations for a graphics processing unit
US8861617B2 (en) * 2010-10-05 2014-10-14 Mediatek Inc Method and apparatus of region-based adaptive loop filtering
KR101526349B1 (en) 2010-10-05 2015-06-05 미디어텍 인크. Method and apparatus of region-based adaptive loop filtering

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101517909A (en) * 2006-09-15 2009-08-26 飞思卡尔半导体公司 Video information processing system with selective chroma deblock filtering
EP1944974A1 (en) * 2007-01-09 2008-07-16 Matsushita Electric Industrial Co., Ltd. Position dependent post-filter hints
CN102150428A (en) * 2008-09-11 2011-08-10 谷歌公司 System and method for video encoding using adaptive segmentation
US20110274158A1 (en) * 2010-05-10 2011-11-10 Mediatek Inc. Method and Apparatus of Adaptive Loop Filtering

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP2697973A4 *

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014097596A1 (en) * 2012-12-19 2014-06-26 パナソニック株式会社 Image encoding method, image decoding method, image encoding device, and image decoding device
KR20180048735A (en) * 2015-09-29 2018-05-10 엘지전자 주식회사 Image filtering method and apparatus in video coding system
EP3358848A4 (en) * 2015-09-29 2019-03-27 LG Electronics Inc. METHOD AND APPARATUS FOR IMAGE FILTERING IN AN IMAGE ENCODING SYSTEM
US10681347B2 (en) 2015-09-29 2020-06-09 Lg Electronics Inc. Method and apparatus of filtering image in image coding system
KR102775168B1 (en) * 2015-09-29 2025-03-04 엘지전자 주식회사 Image filtering method and device in image coding system
US12445646B2 (en) 2017-04-11 2025-10-14 Interdigital Vc Holdings, Inc. 360-degree video coding using face continuities
US12501081B2 (en) 2017-09-20 2025-12-16 Interdigital Vc Holdings, Inc. Handling face discontinuities in 360-degree video coding
CN114449274A (en) * 2020-08-13 2022-05-06 北京达佳互联信息技术有限公司 Chroma codec enhancement in cross-component sample offset compensation
CN114449274B (en) * 2020-08-13 2022-12-30 北京达佳互联信息技术有限公司 Method, apparatus and medium for decoding video signal
US12149687B2 (en) 2020-08-13 2024-11-19 Beijing Dajia Internet Information Technology Co., Ltd. Chroma coding enhancement in cross-component sample adaptive offset

Also Published As

Publication number Publication date
AU2013248857A1 (en) 2013-11-28
US20150016506A1 (en) 2015-01-15
CN103518375A (en) 2014-01-15
AU2013248857B2 (en) 2015-11-05
LT2697973T (en) 2017-09-25
CN105049845B (en) 2018-08-07
CN103518375B (en) 2017-08-18
EP2697973A1 (en) 2014-02-19
ES2641443T3 (en) 2017-11-10
SI2697973T1 (en) 2017-11-30
DK2697973T3 (en) 2017-09-25
HUE034384T2 (en) 2018-02-28
PL2697973T3 (en) 2017-12-29
EP2697973A4 (en) 2015-03-11
US10511843B2 (en) 2019-12-17
CN105049845A (en) 2015-11-11
RS56322B1 (en) 2017-12-29
HRP20171212T1 (en) 2017-11-17
EP2697973B1 (en) 2017-06-28
PT2697973T (en) 2017-08-23
CY1119396T1 (en) 2018-02-14

Similar Documents

Publication Publication Date Title
AU2013248857B2 (en) Method and apparatus for loop filtering across slice or tile boundaries
US10116967B2 (en) Method and apparatus for coding of sample adaptive offset information
US9872015B2 (en) Method and apparatus for improved in-loop filtering
KR101752612B1 (en) Method of sample adaptive offset processing for video coding
US20220303587A1 (en) Method and Apparatus for Adaptive Loop Filtering at Picture and Sub-Picture Boundary in Video Coding
US20140198844A1 (en) Method and apparatus for non-cross-tile loop filtering
WO2012155553A1 (en) Apparatus and method of sample adaptive offset for luma and chroma components
WO2013155899A1 (en) Method and apparatus for sample adaptive offset coding with separate sign and magnitude

Legal Events

Date Code Title Description
REEP Request for entry into the european phase

Ref document number: 2013778244

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 2013778244

Country of ref document: EP

ENP Entry into the national phase

Ref document number: 2013248857

Country of ref document: AU

Date of ref document: 20130222

Kind code of ref document: A

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 13778244

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 14380710

Country of ref document: US

NENP Non-entry into the national phase

Ref country code: DE