Enhancing HEVC Compressed Videos with a Partition-masked Convolutional Neural Network

May 10, 2018 ยท Declared Dead ยท ๐Ÿ› International Conference on Information Photonics

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Authors Xiaoyi He, Qiang Hu, Xintong Han, Xiaoyun Zhang, Chongyang Zhang, Weiyao Lin arXiv ID 1805.03894 Category cs.MM: Multimedia Citations 81 Venue International Conference on Information Photonics Last Checked 1 month ago
Abstract
In this paper, we propose a partition-masked Convolution Neural Network (CNN) to achieve compressed-video enhancement for the state-of-the-art coding standard, High Efficiency Video Coding (HECV). More precisely, our method utilizes the partition information produced by the encoder to guide the quality enhancement process. In contrast to existing CNN-based approaches, which only take the decoded frame as the input to the CNN, the proposed approach considers the coding unit (CU) size information and combines it with the distorted decoded frame such that the degradation introduced by HEVC is reduced more efficiently. Experimental results show that our approach leads to over 9.76% BD-rate saving on benchmark sequences, which achieves the state-of-the-art performance.
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