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Re-estimation of Motion and Reconstruction for Distributed Video Coding

机译:分布式视频编码的运动和重构的重新估计

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摘要

Transform domain Wyner-Ziv (TDWZ) video coding is an efficient approach to distributed video coding (DVC), which provides low complexity encoding by exploiting the source statistics at the decoder side. The DVC coding efficiency depends mainly on side information and noise modeling. This paper proposes a motion re-estimation technique based on optical flow to improve side information and noise residual frames by taking partially decoded information into account. To improve noise modeling, a noise residual motion re-estimation technique is proposed. Residual motion compensation with motion updating is used to estimate a current residue based on previously decoded frames and correlation between estimated side information frames. In addition, a generalized reconstruction algorithm to optimize a multihypothesis reconstruction is proposed. The proposed techniques using motion and reconstruction re-estimation (MORE) are integrated in the SING TDWZ codec, which uses side information and noise learning. For Wyner-Ziv frames using GOP size 2, the MORE codec significantly improves the TDWZ coding efficiency with an average (Bjøntegaard) PSNR improvement of 2.5 dB and up to 6 dB improvement compared with DISCOVER.
机译:变换域Wyner-Ziv(TDWZ)视频编码是一种用于分布式视频编码(DVC)的有效方法,该方法通过利用解码器端的源统计信息来提供低复杂度的编码。 DVC编码效率主要取决于辅助信息和噪声建模。本文提出一种基于光流的运动重估计技术,通过考虑部分解码的信息来改善边信息和噪声残留帧。为了改善噪声建模,提出了一种噪声残留运动重新估计技术。具有运动更新的残差运动补偿用于基于先前解码的帧和估计的辅助信息帧之间的相关性来估计当前残差。此外,提出了一种优化多假设重构的广义重构算法。所提出的使用运动和重构重新估计(MORE)的技术已集成在SING TDWZ编解码器中,该编解码器使用了边信息和噪声学习。对于使用GOP大小2的Wyner-Ziv帧,与DISCOVER相比,MORE编解码器显着提高了TDWZ编码效率,平均(Bjøntegaard)PSNR改善了2.5 dB,提高了6 dB。

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