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An Enhanced MoBayesShrink Thresholding for Medical Image Denoising

机译:用于医学图像去噪的增强的Mobayesshrink阈值

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The digital image carries a lot of pictorial information which has now become one of the chief ways of communication in this generation. The transmission of media especially image is often corrupted by the Gaussian noise due to various issues. This noise is needed to be removed. Image denoising technique is applied to remove such noise and make it of high quality. This additive Gaussian noise can be removed using wavelet denoising technique. This paper presents a better method that controls the threshold (T) adaptively to eliminate noise. Experimental results of the proposed method are better than the existing denoising algorithm Such as NSTISM(19), SPBIDM(18), BayesShrink, NormalShrink, and ModifiedBayesShrink.
机译:数字图像具有许多现在的图形信息,现在已成为这一代中的主要通信方式之一。介质尤其是图像的传输通常由于各种问题而被高斯噪声损坏。需要删除此噪音。应用图像去噪技术以消除这种噪音并使其具有高质量。可以使用小波去噪技术除去这种添加剂高斯噪声。本文介绍了一种更好的方法,可以自适应地控制阈值(t)以消除噪声。所提出的方法的实验结果优于现有的去噪算法,如nstism(19),spbidm(18),Bayesshrink,Noralshrink和ModifiedBayeshrink。

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