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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >A simple and fast adaptive nonlocal multispectral filtering algorithm for efficient noise reduction in magnetic resonance imaging
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A simple and fast adaptive nonlocal multispectral filtering algorithm for efficient noise reduction in magnetic resonance imaging

机译:一种简单快速自适应的非局部多光谱滤波算法,用于磁共振成像的高效降噪

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摘要

Purpose: We recently introduced a multispectral (MS) nonlocal (NL) filter based on maximum likelihood estimation (MLE) of voxel intensities, termed MS-NLML. While MS-NLML provides excellent noise reduction and improved image feature preservation as compared to other NL or MS filters, it requires considerable processing time, limiting its application in routine analyses. In this work, we introduced a fast, simple, and robust filter, termed nonlocal estimation of multispectral magnitudes (NESMA), for noise reduction in multispectral (MS) magnetic resonance imaging (MRI).
机译:目的:我们最近通过Voxel强度的最大似然估计(MLE)引入了多光谱(MS)非峰(NL)滤波器,称为MS-NLML。 虽然与其他NL或MS过滤器相比,MS-NLML提供出色的降噪和改进的图像功能保存,但它需要相当大的处理时间,限制其在常规分析中的应用。 在这项工作中,我们介绍了一种快速,简单,坚固且稳健的过滤器,称为多光谱幅度(NESMA)的非局部估计,用于多光谱(MS)磁共振成像(MRI)的降噪。

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