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Improved optimization of soft-partition-weighted-sum filters and their application to image restoration

机译:改进的软分区加权和滤波器优化及其在图像恢复中的应用

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摘要

Soft-partition-weighted-sum (Soft-PWS) filters are a class of spatially adaptive moving-window filters for signal and image restoration. Their performance is shown to be promising. However, optimization of the Soft-PWS filters has received only limited attention. Earlier work focused on a stochastic-gradient method that is computationally prohibitive in many applications. We describe a novel radial basis function interpretation of the Soft-PWS filters and present an efficient optimization procedure. We apply the filters to the problem of noise reduction. The experimental results show that the Soft-PWS filter outperforms the standard partition-weighted-sum filter and the Wiener filter.
机译:软分区加权和(Soft-PWS)滤波器是一类用于信号和图像恢复的空间自适应移动窗口滤波器。他们的表现被证明是有前途的。但是,Soft-PWS过滤器的优化仅受到有限的关注。早期的工作集中在一种随机梯度方法上,该方法在许多应用程序中在计算上是无法实现的。我们描述了Soft-PWS滤波器的一种新颖的径向基函数解释,并提出了一种有效的优化程序。我们将滤波器应用于降噪问题。实验结果表明,Soft-PWS滤波器的性能优于标准分区加权和滤波器和Wiener滤波器。

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