IP Library Granted Patent US 12,219,152
Granted Patent B2
US 12,219,152 · App. 18/490,939 · Granted Feb 4, 2025

Image decoding device and image decoding method deriving block filtering strength parameter

Inventors: Shunichi Sekiguchi (Tokyo, JP); Kazuo Sugimoto (Tokyo, JP); Hiroharu Sakate (Tokyo, JP); Tokumichi Murakami (Tokyo, JP); Akira Minezawa (Tokyo, JP)
Assignee: MITSUBISHI ELECTRIC CORPORATION
H04N19/154H04N19/117H04N19/14H04N19/159H04N19/176H04N19/186H04N19/593H04N19/61H04N19/82H04N19/865H04N19/46
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Quick Facts
Patent No.
US 12,219,152
App. No.
18/490,939
Granted
Feb 4, 2025
Kind
B2
Abstract

When removing a block distortion occurring in a local decoded image, a loop filtering part 11 of an image coding device carries out a filtering process on each of signal components (a luminance signal component and color difference signal components) after setting the intensity of a filter for removing the block distortion for each of the signal components according to a coding mode (an intra coding mode or an inter coding mode) selected by a coding controlling part 1.

Claims (13)

1. An image decoding device that carries out a decoding process on a coded data obtained by performing a block based coding process on an image, the image decoding device comprising:

a coded data decoder to decode the coded data to acquire compressed data of a difference image, a coding mode associated with each of coding blocks, and an offset, the coding mode indicating a prediction mode and prediction blocks in each of the coding blocks;

a prediction image generator to carry out a prediction process for each of the coding blocks according to the coding mode to generate a prediction image of each of the coding blocks;

a decoded image generator to add a decompressed difference image to the prediction image for each of the coding blocks to generate a decoded image;

an image distortion remover to carry out a filtering process on the decoded image to remove a block distortion occurring at a boundary between adjacent prediction blocks of the decoded image, the prediction block corresponding to the coding block hierarchically divided from a maximum size of a coding block; and

a memory to store decoded pixel values for outputting the decoded image on which the filtering process has been carried out,

wherein the image distortion remover determines whether a vertical edge or a horizontal edge of the coding block expressed by K*K pixel grid overlaps the boundary, and derives, in a case that the vertical edge or the horizontal edge overlaps the boundary, a parameter of the coding block specifying filtering strength as a default value for the offset according to a set of conditions including whether the coding mode corresponding to at least one of the adjacent prediction blocks to which the filtering process is to be applied is intra prediction mode, and the offset is added to a value of the parameter in a process of selecting from different filtering processes.

2. An image decoding method that carries out a decoding process on a coded data obtained by performing a block based coding process on an image, the image decoding method comprising:

decoding the coded data to acquire compressed data of a difference image, a coding mode associated with each of coding blocks, and an offset, the coding mode indicating a prediction mode and prediction blocks in each of the coding blocks;

carrying out a prediction process on each of the coding blocks to generate a prediction image; adding a decompressed difference image to the prediction image for each of the coding blocks to generate a decoded image;

carrying out a filtering process on the decoded image to remove a block distortion occurring at a boundary between adjacent prediction blocks of the decoded image, the prediction block corresponding to the coding block hierarchically divided from a maximum size of a coding block; and

storing decoded pixel values for outputting the decoded image on which the filtering process has been carried out,

wherein, when removing the block distortion occurring in the decoded image, whether a vertical edge or a horizontal edge of the coding block expressed by K*K pixel grid overlaps the boundary is determined and, in a case that the vertical edge or the horizontal edge overlaps the boundary, a parameter of the coding block specifying filtering strength as a default value for the offset is derived according to a set of conditions including whether the coding mode corresponding to at least one of the adjacent prediction blocks to which the filtering process is to be applied is intra prediction mode, and the offset is added to a value of the parameter in a process of selecting from different filtering processes.

Priority Claims (1)
JP 2011-145612 · Jun 30, 2011 · national
Continuity (8)
Division 18093082 · Jan 4, 2023
Division 17083441 · Oct 29, 2020
Division 16399178 · Apr 30, 2019
Division 15868253 · Jan 11, 2018
Division 15479584 · Apr 5, 2017
Division 14707940 · May 8, 2015
Division 14110366
Related Publication 20240048720A1 · Feb 8, 2024
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