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Adaptive Video Motion Estimation Algorithm via Estimation of Motion Length Distribution and Bayesian Classification

机译:运动长度分布估计和贝叶斯分类的自适应视频运动估计算法

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摘要

Real videos contain mixture of motions with slow and fast contents. No fixed fast block matching algorithm can efficiently remove temporal redundancy of video sequences with wide motion contents. In this paper, an adaptive fast block matching algorithm, called classification based adaptive search (CBAS) has been proposed. A Bayes classifier is applied to classify the motions into slow and fast categories. Accordingly, appropriate search strategy is applied for each class. The algorithm switches between different search patterns according to the content of motions within video frames. Experimental results show the proposed technique outperforms conventional standalone fast block matching methods in terms of both peak signal to noise ratio (PSNR) and computational complexity.
机译:真实视频含有慢速和快速内容的运动混合物。没有固定的快速块匹配算法可以有效地消除具有宽运动内容的视频序列的时间冗余。本文已经提出了一种自适应快速块匹配算法,称为基于分类的自适应搜索(CBA)。应用贝叶斯分类器将动议分类为缓慢而快速的类别。因此,对每个类应用适当的搜索策略。该算法根据视频帧内的运动内容在不同的搜索模式之间切换。实验结果表明,所提出的技术在峰值信号与噪声比(PSNR)和计算复杂度方面优于常规独立的快速块匹配方法。

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