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首页> 外文期刊>Journal of circuits, systems and computers >Hybrid Approach of Efficient Decision-Based Algorithm and Fuzzy Logic for the Removal of High Density Salt and Pepper Noise in Images
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Hybrid Approach of Efficient Decision-Based Algorithm and Fuzzy Logic for the Removal of High Density Salt and Pepper Noise in Images

机译:高效决策算法和模糊逻辑的混合方法去除图像中高密度盐和胡椒噪声

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摘要

In this paper, this hybrid approach of efficient decision-based scheme and fuzzy logic are proposed for the restoration of gray scale and color images that are heavily corrupted by salt and pepper noise. The processed pixel is examined for 0 or 255; if found true, then it is considered as noisy pixel else not noisy. If found noisy the four neighbors of the noisy pixels are checked for 0 or 255. If all the four neighbors of the corrupted pixel are noisy, the mean of the four neighbors replaces the corrupted pixel. If any of the four neighbors is a non-noisy pixel, the number of corrupted pixels is calculated in the current processing window. If the count is less than three, then the noisy pixel is replaced by an unsymmetrical trimmed median. If the current window has more than three noisy pixels, then unsymmetrical trimmed mean replaces the corrupted pixels. If all the pixels of the current processing window are noisy then instead of enhanced decision-based algorithm, the fuzzy membership function of the window is replaced as output processing pixel. The uncorrupted pixel is left unchanged. The proposed algorithm is tested on various gray scale and color images and found that it gives excellent PSNR, high IEF and lowest MSE. Also it preserves the image features like the edges and color components at higher noise densities. The quality of the results of proposed algorithm is superior when compared to the various existing state-of-the-art methods.
机译:在本文中,提出了一种有效的基于决策的方案和模糊逻辑的混合方法,用于还原被盐和胡椒噪声严重破坏的灰度和彩色图像。检查处理后的像素是否为0或255;否则为0。如果发现为真,则视为有噪像素,否则为无噪。如果发现有噪点,则检查有噪像素的四个邻居是否为0或255。如果损坏像素的所有四个邻居都带有噪点,则四个邻居的均值将替换损坏像素。如果四个邻居中的任何一个是非噪点像素,则在当前处理窗口中计算损坏像素的数量。如果计数少于三,则将噪声像素替换为不对称的修整中位数。如果当前窗口的噪点超过三个,则不对称的均值将替换损坏的像素。如果当前处理窗口的所有像素都是嘈杂的,那么该窗口的模糊隶属度函数将被替换为输出处理像素,而不是增强的基于决策的算法。未损坏的像素保持不变。该算法在各种灰度和彩色图像上进行了测试,发现该算法具有出色的PSNR,高IEF和最低的MSE。它还以较高的噪声密度保留图像特征(如边缘和颜色分量)。与各种现有的最新技术相比,所提出算法的结果质量更高。

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