A Novel Image Smoothing Filter Using Membership Function

被引:0
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作者
Tzong-Jer Chen
Keh-Shih Chuang
Sharon Chen
Jeng-Chang Lu
Ya-Hui Shiao
机构
[1] Shu-Zen College of Medicine and Management,Department of Medical Imaging Technology
[2] National Tsing-Hua University,Department of Nuclear Sciences
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关键词
Membership function; fuzzy c-means; noise smoothing;
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摘要
This paper presents a new class of image noise smoothing algorithms utilizing the membership information of the neighboring pixels. The basic idea of this method is to compute the smoothed output using neighboring pixels from the same cluster to avoid image blurring. A fuzzy c-means algorithm is first applied to the image to separate the image pixels into a certain number of clusters. A membership function is defined as the probability that a pixel belongs to a cluster. The proposed method uses this membership function as a weight to calculate the weighted sum of the pixel values from its neighboring pixels. The results of the application of this algorithm to various images show that it can smooth images with edge enhancement. The smoothness of the resultant images can be controlled by the cluster number and window size.
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页码:381 / 392
页数:11
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