医学图像去噪技术的解剖

Madhulika Pandey, Madhulika Bhatia, Abhay Bansal
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引用次数: 10

摘要

在诸如医学、通信和卫星等信号处理的应用中,预处理被认为是一个至关重要的步骤,其重点是降低或去除图像中包含的噪声水平。去噪过程有助于保留更精细的细节和有用的信息。MRI、CT和x射线等医学图像包含非常精细的细节,这些细节需要正确且无噪声,以便在诊断过程中不丢失感兴趣的信息和特征。本文讨论了医学图像的各种降噪技术,如小波变换、神经网络、PCA、ICA以及均值和中值滤波器。在本文中,我们试图突出各种去噪技术在医学图像处理中的优缺点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An anatomization of noise removal techniques on medical images
In applications of signal processing such as medicine, communications and satellites, preprocessing is considered as a vital step which focuses on reduction or removal of the level of the noise contained in the image. The process of denoising helps in preserving the finer details and useful information. Medical images like MRI, CT and X-ray contain very fine details that need to be correct and free from noise so that the information and features of interests are not lost during the diagnosis. In this paper, various noise reduction techniques such as wavelet transform, Neural Network, PCA, ICA and mean and median filters over medical images has been discussed. In this paper we tried to highlight the strength and weakness of various noise removal techniques over processing of the medical images.
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