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Removal of Low Level Random-Valued Impulse Noise Using Dual Sliding Statistics Switching Median Filter

机译:使用双滑动统计切换中值滤波器消除低电平随机值脉冲噪声

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摘要

A new nonlinear filtering algorithm for effectively denoising images corrupted by the random-valued impulse noise, called dual sliding statistics switching median (DSSSM) filter is presented in this paper. The proposed DSSSM filter is made up of two subunits; i.e. impulse noise detection and noise filtering. Initially, the impulse noise detection stage of DSSSM algorithm begins by processing the statistics of a localized detection window in sorted order and non-sorted order, simultaneously. Next, the median of absolute difference (MAD) obtained from both sorted statistics and non-sorted statistics will be further processed in order to classify any possible noise pixels. Subsequently, the filtering stage will replace the detected noise pixels with the estimated median value of the surrounding pixels. In addition, fuzzy based local information is used in the filtering stage to help the filter preserves the edges and details. Extensive simulations results conducted on gray scale images indicate that the DSSSM filter performs significantly better than a number of well-known impulse noise filters existing in literature in terms of noise suppression and detail preservation; with as much as 30% impulse noise corruption rate. Finally, this DSSSM filter is algorithmically simple and suitable to be implemented for electronic imaging products
机译:提出了一种新的非线性滤波算法,该算法有效地消噪了由随机值脉冲噪声破坏的图像,称为双重滑动统计切换中值(DSSSM)滤波器。提出的DSSSM滤波器由两个子单元组成;即脉冲噪声检测和噪声过滤。最初,DSSSM算法的脉冲噪声检测阶段开始于同时按排序顺序和非排序顺序处理局部检测窗口的统计信息。接下来,将从分类统计数据和未分类统计数据两者中获得的绝对差中值(MAD)进一步处理,以对任何可能的噪声像素进行分类。随后,滤波级将用周围像素的估计中值替换检测到的噪声像素。另外,在过滤阶段使用基于模糊的局部信息来帮助过滤器保留边缘和细节。在灰度图像上进行的大量仿真结果表明,在噪声抑制和细节保留方面,DSSSM滤波器的性能明显优于文献中存在的许多众所周知的脉冲噪声滤波器。脉冲噪声损坏率高达30%。最后,此DSSSM滤波器在算法上很简单,适合用于电子成像产品

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