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Adaptive motion estimation in video coding with a stochastic model

机译:随机模型视频编码的自适应运动估计

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A new motion vector (MV) estimation method for video image compression based on a stochastic model is presented in this work. It is well known that the location of the smallest sum of absolute difference (SAD) does not always give the true MV since the MV obtained via full block search is often corrupted by noise. Thus, multiple locations of relatively small SAD are searched with an adaptive search window by using our method. We pick an MV among those candidates by using temporal correlation. Furthermore, since temporal correlation reveals the noise level in a particular region of the video image sequence, we are able to reduce the search area very effectively. The excellent performance of the proposed method is demonstrated by numerical experiments.
机译:基于随机模型的基于随机模型的视频图像压缩的新运动矢量(MV)估计方法。众所周知,由于通过全块搜索获得的MV通常被噪声损坏,因此最小的绝对差异(SAD)的位置并不总是给出真实的MV。因此,通过使用我们的方法使用自适应搜索窗口搜索相对较小的SAD的多个位置。我们使用时间相关性在那些候选者中挑选MV。此外,由于时间相关揭示了视频图像序列的特定区域中的噪声水平,因此我们能够非常有效地减少搜索区域。通过数值实验证明了所提出的方法的优异性能。

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