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A recursive algorithm for maximum likelihood-based identification of blur from multiple observations

机译:一种基于递归算法的基于最大似然性的多个观测值模糊识别

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摘要

A maximum likelihood-based method is proposed for blur identification from multiple observations of a scene. When the relations among the blurring functions are known, the estimate of blur obtained using the proposed method is very good. Since direct computation of the likelihood function becomes difficult as the number of images increases, we propose an algorithm to compute the likelihood function recursively.
机译:提出了一种基于最大似然的方法,用于从场景的多次观察中进行模糊识别。当模糊函数之间的关系已知时,使用所提出的方法获得的模糊估计非常好。由于随着图像数量的增加,直接计算似然函数变得很困难,因此,我们提出了一种递归计算似然函数的算法。

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