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Enhancing Quality for VVC Compressed Videos with Multi-Frame Quality Enhancement Model

机译:使用多帧质量增强模型提高VVC压缩视频的质量

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Versatile Video Coding (VVC) is the most recent video coding standard, released in July 2020 with two major purposes: (1) providing a similar perceptual quality as the current state-of-the-art High Efficiency Video Coding (HEVC) solution at around half the bitrate and (2) offering native flexible, high-level syntax mechanisms for resolution adaptivity, scalability, and multi-view. However, despite of the compression efficiency, the decoded video obtained with VVC compression still contains distortions and quality degradation due to the nature of the hybrid block and transform based coding approach. To overcome this problem, this paper proposes a novel quality enhancement method for VVC compressed videos where the most advanced deep learning-based multi-frame quality enhancement model (MFQE) is employed. In the proposed QE method, the VVC decoded video is firstly segmented into the peak quality and non-peak quality pictures. After that, a Long-short term memory and two sub-networks are created to achieve better quality video pictures. Experimental results show that, the proposed MFQE based VVC quality enhancement method is able to achieve important quality improvement when compared to the original VVC decoded video.
机译:多功能视频编码(VVC)是最新的视频编码标准,于2020年7月发布,其主要目的是:(1)提供与当前最新的高效视频编码(HEVC)解决方案相似的感知质量。大约一半的比特率;(2)提供本机灵活的高级语法机制,以实现分辨率适应性,可伸缩性和多视图。然而,尽管具有压缩效率,但是由于混合块和基于变换的编码方法的性质,利用VVC压缩获得的解码视频仍然包含失真和质量下降。为了克服这个问题,本文提出了一种新的VVC压缩视频质量增强方法,其中采用了最先进的基于深度学习的多帧质量增强模型(MFQE)。在提出的QE方法中,首先将VVC解码的视频分割成峰值质量和非峰值质量的图片。此后,创建了一个长期短期存储器和两个子网以实现更高质量的视频图像。实验结果表明,与原始的VVC解码视频相比,基于MFQE的VVC质量增强方法能够实现重要的质量改进。

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