An integrated fuzzy additive and impulse noise reduction method for color images

D. Divya Jothi, P. Geetha, S. Anna Durai
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引用次数: 3

Abstract

Noise reduction is a well known problem in image processing. Several filters have already been developed for reducing noise from color images. Since each filter is designed for a particular noise type, these filters reduce only single type of noise. To overcome this drawback, in this paper a new integrated fuzzy filter is presented for the reduction of two types of noise ie) additive noise and impulse noise from digital color images. In the proposed filter an impulse noise detector is used initially to detect the impulse noise present in the filter. Impulse noise detector divides the set of pixels into two point sub-sets: impulse noise contaminated points and clean points without impulse noise. To select the corresponding filters with respect to the noise types, a filter selection module is designed. The filters reduce the noise and the enhanced image is obtained as the output of integrated filter after reducing both the type of noise. The proposed approach combines the advantages of both the additive and impulse noise filter. Experimental and comparison results show that the proposed approach is effective in removing the integrated noise even with severe contamination. The distortions of the microscope that were occurred during the analysis of the structure of tissues, cells and cellular constituents can be reduced using this filter.
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彩色图像的模糊加和脉冲降噪集成方法
降噪是图像处理中一个众所周知的问题。已经开发了几种滤光片来减少彩色图像中的噪声。由于每个滤波器都是针对特定的噪声类型设计的,因此这些滤波器只能减少单一类型的噪声。为了克服这一缺点,本文提出了一种新的集成模糊滤波器,用于降低数字彩色图像中的加性噪声和脉冲噪声两种类型的噪声。在所提出的滤波器中,首先使用脉冲噪声检测器来检测存在于滤波器中的脉冲噪声。脉冲噪声检测器将像素集分成两个点子集:受脉冲噪声污染的点和没有脉冲噪声的干净点。为了根据噪声类型选择相应的滤波器,设计了滤波器选择模块。滤波器对噪声进行降噪处理后,得到增强后的图像作为集成滤波器的输出。该方法结合了加性噪声滤波器和脉冲噪声滤波器的优点。实验和对比结果表明,该方法能有效去除严重污染的综合噪声。在分析组织、细胞和细胞成分的结构时,可以减少显微镜的畸变。
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