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Modeling of video sequences by Gaussian mixture: Application in motion estimation by block matching method

机译:基于高斯混合的视频序列建模:块匹配法在运动估计中的应用

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摘要

This article investigates a new method of motion estimation based on block matching criterion through the modeling of image blocks by a mixture of two and three Gaussian distributions. Mixture parameters (weights, means vectors, and covariance matrices) are estimated by the Expectation Maximization algorithm (EM) which maximizes the log-likelihood criterion. The similarity between a block in the current image and the more resembling one in a search window on the reference image is measured by the minimization of Extended Mahalanobis distance between the clusters of mixture. Performed experiments on sequences of real images have given good results, and PSNR reached 3dB.
机译:本文研究了一种基于块匹配标准的运动估计新方法,该方法通过混合两个和三个高斯分布对图像块进行建模。混合参数(权重,均值向量和协方差矩阵)由期望最大化算法(EM)估计,该算法最大化对数似然标准。通过最小化混合物簇之间的扩展马氏距离,可以测量当前图像中的一个块与参考图像中搜索窗口中的一个块之间的相似度。对真实图像序列进行的实验已取得了良好的效果,PSNR达到3dB。

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