MLchartDataset catalogue

Patent · US10743016B2 · B2 · US

Inherited motion information for decoding a current coding unit in a video coding system

(11) Publication number
US10743016B2
(21) Application number
16/503,758
(22) Filing date
2019-07-05
(30) Priority date
2018-07-06
(43) Publication date
2020-08-11
(45) Date of grant
2020-08-11
(51) IPC
H04N 19/107; H04N 19/139; H04N 19/172; H04N 19/436; H04N 19/46; H04N 19/70
(52) CPC
  • H04N Pictorial communication, e.g. television: 19/52, 19/107, 19/139, 19/172, 19/43, 19/436, 19/46, 19/70
  • A61B Diagnosis; surgery; identification: 17/1613
  • B25J Manipulators; chambers provided with manipulation devices: 13/08, 9/1697
  • G06T Image data processing or generation, in general: 2207/30204, 7/251, 7/75
(73) Assignee
MEDIATEK INC
(72) Inventors
LAI CHEN-YEN; CHUANG TZU-DER; CHEN CHING-YEH; HSU CHIH-WEI
(54) Title
Inherited motion information for decoding a current coding unit in a video coding system
(57) Abstract

A method of video decoding at a decoder can include receiving a bitstream including encoded data of a picture, decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table, and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.

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Claims (20)

  1. A method of video decoding at a decoder, comprising: receiving a bitstream including encoded data of a picture; decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table; and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.
  2. The method of claim 1, further comprising: decoding every P CUs in the picture based on motion information stored in the HMVP table without updating the HMVP table, P being an integer greater than 1; and updating the HMVP table with motion information of all or a part of every P CUs after every P CUs are decoded.
  3. The method of claim 2, further comprising: receiving a syntax element indicating a value of P in the bitstream.
  4. The method of claim 1, wherein the decoding includes: decoding CUs within a merge sharing region based on the motion information stored in the HMVP table, wherein the plurality of CUs are the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table, and the updating includes: after the merge sharing region is decoded, updating the HMVP table with the motion information of all or the part of the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table.
  5. The method of claim 4, wherein the CUs within the merge sharing regions are coded with a current picture reference (CPR) mode based on the HMVP table.
  6. The method of claim 1, wherein the plurality of CUs are decoded in parallel.
  7. The method of claim 1, wherein the updating includes one of: updating the HMVP table with the motion information of the last Q of the plurality of CUs, Q being an integer greater than 0, updating the HMVP table with the last Q motion information of the remaining motion information of the plurality of CUs resulting from a pruning operation, updating the HMVP table with the motion information of the first W of the plurality of CUs, W being an integer greater than 0, or updating the HMVP table with the first W motion information of the remaining motion information of the plurality of CUs resulting from a pruning operation.
  8. The method of claim 1, further comprising: resetting the HMVP table for every N coding tree unit (CTU) rows, N being an integer greater than 0.
  9. The method of claim 8, wherein the N CTU rows are CTU rows in a slice or a tile of the picture.
  10. The method of claim 1, further comprising: resetting the HMVP table for every CTU row in a slice or a tile of the picture.
  11. The method of claim 1, further comprising: resetting the HMVP table after processing N CTUs, N being an integer greater than 0.
  12. The method of claim 1, further comprising: resetting the HMVP table after processing a region having a predefined size.
  13. The method of claim 1, further comprising: resetting the HMVP table at a beginning of a tile in the picture.
  14. The method of claim 1, further comprising: initializing the HMVP table at a beginning of a current CTU row with motion information of a CU in a CTU row processed prior to the current CTU row in the picture.
  15. The method of claim 1, further comprising: storing motion information of last CUs in a CTU row processed prior to a current CTU row in a buffer, wherein the decoding includes: decoding the plurality of CUs in the current CTU row based on the motion information stored in the HMVP table and the buffer.
  16. The method of claim 1, wherein the updating includes: performing a pruning process over a subset of HMVP candidates stored in the HMVP table, wherein the subset of HMVP candidates is fewer than all the HMVP candidates in the HMVP table, and the motion information for updating the HMVP table is not added to the HMVP table when an HMVP candidate in the HMVP table identical or similar to the respective motion information for updating the HMVP table is found.
  17. An apparatus of video decoding, comprising circuitry configured to: receive a bitstream including encoded data of a picture; decode a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table; and update the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.
  18. The apparatus of claim 17, wherein the circuitry is configured to: decode CUs within a merge sharing region based on the motion information stored in the HMVP table, wherein the plurality of CUs are the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table, and after the merge sharing region is decoded, update the HMVP table with the motion information of all or the part of the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table.
  19. The apparatus of claim 17, wherein the circuitry is configured to: reset the HMVP table for every CTU row in a slice or a tile of the picture.
  20. A non-transitory computer-readable medium storing a program that, when executed by a processor, causes the processor to perform a method of video decoding, the method comprising: receiving a bitstream including encoded data of a picture; decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table; and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.

Description

The present disclosure relates to video coding techniques.

The background description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventors, to the extent the work is described in this background section, as well as aspects of the description that may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure. Versatile Video Coding (VVC) standard is a next generation video compression standard being developed by the Joint Video Experts Team (JVET). VVC standard will be the successor to High Efficiency Video Coding (HEVC) standard. VVC aims to achieve 30%-50% better compression rate for the same perceptual quality compared with HEVC. The most promising among proposed video coding technologies have been incorporated in the draft VVC standard, while others are still under investigation.

Aspects of the disclosure provide a method of video decoding at a decoder. The method can include receiving a bitstream including encoded data of a picture, decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table, and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.

Citations (14)

  • CN107925762A
  • US10440378B1
  • US10491902B1
  • US2011200107A1
  • US2017332099A1
  • US2018359483A1
  • US2020007889A1
  • US2020021839A1
  • US2020045319A1
  • US2020059658A1
  • US7965773B1
  • WO2017157249A1
  • WO2018124957A1
  • WO2020018486A1
Record as JSON
{
  "publication_number": "US10743016B2",
  "country": "US",
  "kind": "B2",
  "title": "Inherited motion information for decoding a current coding unit in a video coding system",
  "abstract": "A method of video decoding at a decoder can include receiving a bitstream including encoded data of a picture, decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table, and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.",
  "claims": [
    "1. A method of video decoding at a decoder, comprising: receiving a bitstream including encoded data of a picture; decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table; and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.",
    "2. The method of claim 1, further comprising: decoding every P CUs in the picture based on motion information stored in the HMVP table without updating the HMVP table, P being an integer greater than 1; and updating the HMVP table with motion information of all or a part of every P CUs after every P CUs are decoded.",
    "3. The method of claim 2, further comprising: receiving a syntax element indicating a value of P in the bitstream.",
    "4. The method of claim 1, wherein the decoding includes: decoding CUs within a merge sharing region based on the motion information stored in the HMVP table, wherein the plurality of CUs are the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table, and the updating includes: after the merge sharing region is decoded, updating the HMVP table with the motion information of all or the part of the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table.",
    "5. The method of claim 4, wherein the CUs within the merge sharing regions are coded with a current picture reference (CPR) mode based on the HMVP table.",
    "6. The method of claim 1, wherein the plurality of CUs are decoded in parallel.",
    "7. The method of claim 1, wherein the updating includes one of: updating the HMVP table with the motion information of the last Q of the plurality of CUs, Q being an integer greater than 0, updating the HMVP table with the last Q motion information of the remaining motion information of the plurality of CUs resulting from a pruning operation, updating the HMVP table with the motion information of the first W of the plurality of CUs, W being an integer greater than 0, or updating the HMVP table with the first W motion information of the remaining motion information of the plurality of CUs resulting from a pruning operation.",
    "8. The method of claim 1, further comprising: resetting the HMVP table for every N coding tree unit (CTU) rows, N being an integer greater than 0.",
    "9. The method of claim 8, wherein the N CTU rows are CTU rows in a slice or a tile of the picture.",
    "10. The method of claim 1, further comprising: resetting the HMVP table for every CTU row in a slice or a tile of the picture.",
    "11. The method of claim 1, further comprising: resetting the HMVP table after processing N CTUs, N being an integer greater than 0.",
    "12. The method of claim 1, further comprising: resetting the HMVP table after processing a region having a predefined size.",
    "13. The method of claim 1, further comprising: resetting the HMVP table at a beginning of a tile in the picture.",
    "14. The method of claim 1, further comprising: initializing the HMVP table at a beginning of a current CTU row with motion information of a CU in a CTU row processed prior to the current CTU row in the picture.",
    "15. The method of claim 1, further comprising: storing motion information of last CUs in a CTU row processed prior to a current CTU row in a buffer, wherein the decoding includes: decoding the plurality of CUs in the current CTU row based on the motion information stored in the HMVP table and the buffer.",
    "16. The method of claim 1, wherein the updating includes: performing a pruning process over a subset of HMVP candidates stored in the HMVP table, wherein the subset of HMVP candidates is fewer than all the HMVP candidates in the HMVP table, and the motion information for updating the HMVP table is not added to the HMVP table when an HMVP candidate in the HMVP table identical or similar to the respective motion information for updating the HMVP table is found.",
    "17. An apparatus of video decoding, comprising circuitry configured to: receive a bitstream including encoded data of a picture; decode a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table; and update the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.",
    "18. The apparatus of claim 17, wherein the circuitry is configured to: decode CUs within a merge sharing region based on the motion information stored in the HMVP table, wherein the plurality of CUs are the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table, and after the merge sharing region is decoded, update the HMVP table with the motion information of all or the part of the CUs within the merge sharing region that are decoded based on the motion information stored in the HMVP table.",
    "19. The apparatus of claim 17, wherein the circuitry is configured to: reset the HMVP table for every CTU row in a slice or a tile of the picture.",
    "20. A non-transitory computer-readable medium storing a program that, when executed by a processor, causes the processor to perform a method of video decoding, the method comprising: receiving a bitstream including encoded data of a picture; decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table; and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table."
  ],
  "description_excerpt": "The present disclosure relates to video coding techniques.\n\nThe background description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventors, to the extent the work is described in this background section, as well as aspects of the description that may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure. Versatile Video Coding (VVC) standard is a next generation video compression standard being developed by the Joint Video Experts Team (JVET). VVC standard will be the successor to High Efficiency Video Coding (HEVC) standard. VVC aims to achieve 30%-50% better compression rate for the same perceptual quality compared with HEVC. The most promising among proposed video coding technologies have been incorporated in the draft VVC standard, while others are still under investigation.\n\nAspects of the disclosure provide a method of video decoding at a decoder. The method can include receiving a bitstream including encoded data of a picture, decoding a plurality of coding units (CUs) in the picture based on motion information stored in a history-based motion vector prediction (HMVP) table without updating the HMVP table, and updating the HMVP table with motion information of all or a part of the plurality of CUs after the plurality of CUs are decoded based on the motion information stored in the HMVP table.",
  "cpc": [
    "H04N 19/52",
    "A61B 17/1613",
    "B25J 13/08",
    "B25J 9/1697",
    "G06T 2207/30204",
    "G06T 7/251",
    "G06T 7/75",
    "H04N 19/107",
    "H04N 19/139",
    "H04N 19/172",
    "H04N 19/43",
    "H04N 19/436",
    "H04N 19/46",
    "H04N 19/70"
  ],
  "ipc": [
    "H04N 19/107",
    "H04N 19/139",
    "H04N 19/172",
    "H04N 19/436",
    "H04N 19/46",
    "H04N 19/70"
  ],
  "assignees": [
    "MEDIATEK INC"
  ],
  "inventors": [
    "LAI CHEN-YEN",
    "CHUANG TZU-DER",
    "CHEN CHING-YEH",
    "HSU CHIH-WEI"
  ],
  "filing_date": "2019-07-05",
  "publication_date": "2020-08-11",
  "grant_date": "2020-08-11",
  "priority_date": "2018-07-06",
  "application_number": "US-201916503758-A",
  "family_id": "69060620",
  "citations": [
    "CN107925762A",
    "US10440378B1",
    "US10491902B1",
    "US2011200107A1",
    "US2017332099A1",
    "US2018359483A1",
    "US2020007889A1",
    "US2020021839A1",
    "US2020045319A1",
    "US2020059658A1",
    "US7965773B1",
    "WO2017157249A1",
    "WO2018124957A1",
    "WO2020018486A1"
  ]
}

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