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Partition fuzzy median filter based on fuzzy rules for image restoration

机译:基于模糊规则的分区模糊中值滤波图像复原

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摘要

In this paper, a novel adaptive median-based filter, called the partition fuzzy median (PFM) filter, is proposed for improving the median-based filter to preserve image details while effectively suppressing impulsive noises. The proposed filter achieves its effect through a summation of the weighted output of the median filter and the related weighted input signal. The weights are set in accordance with the fuzzy rules. In order to design this weight function, a method to partition of the observation vector space and a learning approach are proposed so that the mean square error of the filter output can be minimum. Based on the constrained least mean square algorithm, an iterative learning procedure is derived and its convergence property is investigated. As for the noise suppressing on both fixed- and random-valued impulses without degrading the quality of fine details, extensive experimental results demonstrate that the proposed filter outperforms the other median-based filters in the literature. The new filter also provides excellent robustness with respect to various percentages of impulse noise in our testing examples.
机译:本文提出了一种新型的基于自适应中值的自适应滤波器,称为分区模糊中值(PFM)滤波器,以改进基于中值的滤波器,以保留图像细节,同时有效地抑制脉冲噪声。所提出的滤波器通过将中值滤波器的加权输出与相关的加权输入信号相加来实现其效果。权重是根据模糊规则设置的。为了设计该加权函数,提出了一种划分观察向量空间的方法和一种学习方法,以使滤波器输出的均方误差最小。基于约束最小均方算法,推导了迭代学习过程,并研究了其收敛性。至于抑制固定值和随机值脉冲的噪声而不降低细节质量,广泛的实验结果表明,所提出的滤波器优于文献中其他基于中值的滤波器。在我们的测试示例中,新滤波器还针对各种百分比的脉冲噪声提供了出色的鲁棒性。

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