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Fusion of Global and Local Motion Estimation Using Foreground Objects for Distributed Video Coding

机译:使用前景对象进行分布式视频编码的全局和局部运动估计的融合

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The side information (SI) in Distributed Video Coding (DVC) is estimated using the available decoded frames and exploited for the decoding and reconstruction of other frames. The quality of the SI has a strong impact on the performance of DVC. Here, we propose a new approach that combines both global and local SI to improve coding performance. Since the background pixels in a frame are assigned to global estimation and the foreground objects to local estimation, one needs to estimate foreground objects in the SI using the backward and forward foreground objects, the background pixels are directly taken from the global SI. Specifically, elastic curves and local motion compensation are used to generate the foreground objects masks in the SI. Experimental results show that, as far as the rate-distortion performance is concerned, the proposed approach can achieve a PSNR improvement of up to 1.39 dB for a group of picture (GOP) size of 2, and up to 4.73 dB for larger GOP sizes, with respect to the reference DISCOVER codec.
机译:使用可用的已解码帧估计分布式视频编码(DVC)中的辅助信息(SI),并将其用于其他帧的解码和重建。 SI的质量对DVC的性能有很大的影响。在这里,我们提出了一种结合全局和局部SI来提高编码性能的新方法。由于将一帧中的背景像素分配给全局估计,将前景对象分配给局部估计,因此需要使用后向和前向前景对象来估计SI中的前景对象,因此直接从全局SI中获取背景像素。具体而言,使用弹性曲线和局部运动补偿来生成SI中的前景对象蒙版。实验结果表明,就速率失真性能而言,该方法对于一组2个图片(GOP)可以实现高达1.39 dB的PSNR改善,而对于较大GOP大小则可以达到4.73 dB。 ,关于参考DISCOVER编解码器。

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