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The MPM-MAP algorithm for motion segmentation

机译:用于运动分割的MPM-MAP算法

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We present an MPM-MAP application for the efficient estimation of piecewise parametric models for motion segmentation. This algorithm permits the simultaneous estimation of. the number of models, the parameters for each model and the regions where each model is applicable. It is based on Bayesian estimation theory, and is theoretically justified by the use of a specific cost function whose expected value decreases at every iteration and by a new model for the posterior marginal distributions which is amenable to the use of fast computational methods. We compare the performance of this method with the most similar segmentation algorithm. the well known Expectation-Maximization algorithm. We present a comparison of the performance of both algorithms using synthetic and real image sequences. (C) 2004 Elsevier Inc. All rights reserved.
机译:我们提出了一种MPM-MAP应用程序,用于有效估计运动分割的分段参数模型。该算法允许同时估计。模型数量,每个模型的参数以及每个模型适用的区域。它基于贝叶斯估计理论,并在理论上通过使用特定成本函数(其期望值在每次迭代时均会减小)和后边际分布的新模型(可使用快速计算方法进行修正)来证明其合理性。我们将这种方法与最相似的分割算法的性能进行比较。众所周知的期望最大化算法。我们比较了使用合成图像序列和真实图像序列的两种算法的性能。 (C)2004 Elsevier Inc.保留所有权利。

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