Motion-adaptive quantization and reconstruction technique for distributed video coding

Aniruddha Shirahatti, Joohee Kim
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引用次数: 1

Abstract

Distributed video coding is a new paradigm based on two information theoretical results by Slepian-Wolf and Wyner-Ziv. The architectures designed so far have invariably made use of the uniform scalar quantization schemes along with a few attempts to make the schemes more adaptive. Quantization is one of the major contributors to the large performance gap between conventional video coding standards and distributed video coding. In this paper, an attempt is made to improve the performance of the Wyner-Ziv video coding by making the quantization algorithm more adaptive to the motion content of the video sequence without significantly increasing the encoder complexity. The proposed method also exploits the temporal correlation to provide for online correlation noise classification. Hence, the improved reconstruction technique which uses the correlation noise information is more adaptive to the motion content. Simulation results show that the proposed motion-adaptive quantization and reconstruction technique achieves improved rate-distortion performance.
分布式视频编码的运动自适应量化与重构技术
分布式视频编码是基于Slepian-Wolf和Wyner-Ziv两个信息理论成果的一种新的编码范式。迄今为止设计的体系结构总是使用统一的标量量化方案以及一些使方案更具适应性的尝试。量化是造成传统视频编码标准与分布式视频编码之间存在较大性能差距的主要原因之一。本文试图在不显著增加编码器复杂度的前提下,使量化算法更能适应视频序列的运动内容,从而提高Wyner-Ziv视频编码的性能。该方法还利用时间相关性提供在线相关噪声分类。因此,利用相关噪声信息的改进重建技术对运动内容的适应性更强。仿真结果表明,所提出的运动自适应量化和重建技术取得了较好的率失真性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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