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Spectral Design of Weighted Median Filters: A General Iterative Approach

机译:加权中值滤波器的频谱设计:通用迭代方法

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摘要

A new design strategy for weighted median (WM) filters admitting real and complex valued weights is presented. The algorithms are derived from Mallows theory for nonlinear selection type smoothers, which states that the closest linear filter to a selection type smoother in the mean square error sense is the one having as coefficients the sample selection probabilities (SSPs) of the smoother. The new design method overcomes the severe limitations of previous approaches that require the construction of high order polynomial functions and high dimensional matrices. As such, previous approaches could only provide solutions for filters of very small sizes. The proposed method is based on a new closed-form function used to derive the SSPs of any WM smoother. This function allows for an iterative approach to WM filter design from the spectral profile of a linear filter. This method is initially applied to solve the median filter design problem in the real domain, and then, it is extended to the complex domain. The final optimization algorithm allows the design of robust weighted median filters of arbitrary size based on linear filters having arbitrary spectral characteristics.
机译:提出了一种新的加权中值(WM)过滤器设计策略,该过滤器允许实值和复值加权。该算法源自用于非线性选择类型平滑器的Mallows理论,该算法指出在均方误差意义上最接近选择类型平滑器的线性滤波器是将平滑器的样本选择概率(SSP)作为系数的滤波器。新的设计方法克服了以前方法的严重局限性,这些方法要求构造高阶多项式函数和高维矩阵。这样,以前的方法只能为非常小的尺寸的滤波器提供解决方案。所提出的方法基于用于导出任何WM平滑器的SSP的新封闭形式函数。此功能允许从线性滤波器的光谱轮廓中迭代地进行WM滤波器设计。该方法最初用于解决实际域中的中值滤波器设计问题,然后将其扩展到复杂域。最终的优化算法允许基于具有任意频谱特征的线性滤波器设计任意大小的鲁棒加权中值滤波器。

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