Learning-Based Fast Splitting and Directional Mode Decision for VVC Intra Prediction

被引:6
|
作者
Huang, Yuanyuan [1 ,2 ]
Yu, Junyi [3 ]
Wang, Dayong [4 ]
Lu, Xin [5 ]
Dufaux, Frederic [6 ]
Guo, Hui [7 ]
Zhu, Ce [8 ]
机构
[1] Chengdu Univ Informat Technol, Dept Network Engn, Chengdu 610225, Peoples R China
[2] Wuzhou Univ, Guangxi Key Lab Machine Vis & Intelligent Control, Wuzhou 543002, Peoples R China
[3] Chongqing Univ Posts & Telecommun, Sch Comp Sci & Technol, Chongqing 400065, Peoples R China
[4] Chongqing Univ Posts & Telecommun, Chongqing Key Lab Big Data Bio Intelligence, Chongqing 400065, Peoples R China
[5] De Montfort Univ, Sch Comp Sci & Informat, Leicester LE1 9BH, England
[6] Univ Paris Saclay, Lab Signaux & Syst, CNRS, Cent Supelec, F-91192 Gif Sur Yvette, France
[7] Wuzhou Univ, Guangxi Key Lab Machine Vis & Intelligent Control, Wuzhou 543002, Peoples R China
[8] Univ Elect Sci & Technol China, Sch Informat & Commun Engn, Chengdu 611731, Peoples R China
基金
中国国家自然科学基金;
关键词
Versatile video coding; split mode; directional mode; early termination; deep learning; CU SIZE DECISION;
D O I
10.1109/TBC.2024.3360729
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
As the latest video coding standard, Versatile Video Coding (VVC) is highly efficient at the cost of very high coding complexity, which seriously hinders its practical application. Therefore, it is very crucial to improve its coding speed. In this paper, we propose a learning-based fast split mode (SM) and directional mode (DM) decision algorithm for VVC intra prediction using a deep learning approach. Specifically, given the observation that the SM distributions of coding units (CUs) of different sizes are significantly distinct, we first design the neural networks separately and train the SM models for all CUs of different sizes to obtain the probability of SMs and skip the unlikely ones. Second, given a similar observation that the DM distributions of CUs of different sizes are distinct, we design neural networks to train the DM models for all CUs of different sizes separately to obtain the probabilities of DMs, and then adaptively select candidate DMs based on probabilities of their located SMs. Third, after an SM is checked, we select its probability, residual coefficients, rate-distortion (RD) cost, etc. as features, and design a lightweight neural network (LNN) model to early terminate SM selection. Experimental results demonstrate that the proposed algorithm can reduce the encoding time of VVC by 70.73% with 2.44% increase in Bjontegaard delta bit-rate (BDBR) on average.
引用
收藏
页码:681 / 692
页数:12
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