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Using Anfis with circular polygons for impulsive noise suppression from highly distorted images

机译:将Anfis与圆形多边形配合使用可从高度失真的图像中抑制脉冲噪声

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摘要

In this paper, a novel approach is presented to the restoration of images corrupted by impulsive noise (IN), with a new nonlinear IN suppression filter, entitled circular polygons based adaptive-fuzzy filter (CF). The proposed filter is based on statistical impulse detection and nonlinear filtering which uses adaptive-network-based fuzzy inference system (Anfis) as a missed data interpolant over the circular polygons and provides estimates for the original intensity values of corrupted pixels. Impulse detection is realized by using the chi-square based goodness-of-fit test, which yields a decision about the impulsivity of each pixel. Extensive simulations were realized to demonstrate the capability of CF and they reveal that the proposed filter achieves a better performance than the other filters mentioned in this paper in the cases of being effective in noise suppression and detail preservation, also when the images are highly corrupted by IN.
机译:在本文中,提出了一种新颖的方法来恢复由脉冲噪声(IN)破坏的图像,该方法采用了一种新的非线性IN抑制滤波器,称为基于圆形多边形的自适应模糊滤波器(CF)。所提出的滤波器基于统计脉冲检测​​和非线性滤波,非线性滤波使用基于自适应网络的模糊推理系统(Anfis)作为圆形多边形上的遗漏数据插值,并提供对损坏像素的原始强度值的估计。脉冲检测是通过使用基于卡方的拟合优度测试来实现的,该测试可确定每个像素的脉冲性。进行了广泛的仿真以证明CF的功能,并且它们表明,在有效抑制噪声和保留细节的情况下,以及当图像受到严重破坏时,所提出的滤波器比本文提到的其他滤波器具有更好的性能。在。

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