首页> 外文会议>Image Processing, 1994. Proceedings. ICIP-94., IEEE International Conference >Synthesis of adaptive weighted order statistic filters with gradient algorithms and application to image processing
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Synthesis of adaptive weighted order statistic filters with gradient algorithms and application to image processing

机译:梯度算法的自适应加权阶统计滤波器的合成及其在图像处理中的应用

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This paper deals with the adaptive optimization of nonlinear weighted order statistic filters (WOSF). We propose three gradient-based approaches to adapt the filter weights and rank in order to minimize mean square and mean absolute error criteria. The two first solutions are derived from conventional gradient techniques, one solution uses an explicit formulation of the filter output while the second one results from an implicit formulation yet introduced to optimize rank order based filters. The third solution is derived from a three layer neural network scheme. Some practical examples illustrate the ability of the adaptive solutions to cope with texture restoration and noise removal in image processing.
机译:本文研究了非线性加权阶数统计滤波器(WOSF)的自适应优化。我们提出了三种基于梯度的方法来调整滤波器的权重和等级,以最小化均方和平均绝对误差标准。这两个第一个解决方案是从常规的梯度技术中派生出来的,一个解决方案使用了滤波器输出的显式公式,而第二个解决方案则是由隐式公式产生的,而隐式公式却被引入以优化基于等级顺序的滤波器。第三种解决方案是从三层神经网络方案中得出的。一些实际示例说明了自适应解决方案在图像处理中应对纹理恢复和噪声消除的能力。

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