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Automatic estimation of the noise variance from the histogram of a magnetic resonance image

机译:根据磁共振图像的直方图自动估算噪声方差

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摘要

Estimation of the noise variance of a magnetic resonance (MR) image is important for various post-processing tasks. In the literature, various methods for noise variance estimation from MR images are available, most of which however require user interaction and/or multiple ( perfectly aligned) images. In this paper, we focus on automatic histogram-based noise variance estimation techniques. Previously described methods are reviewed and a new method based on the maximum likelihood (ML) principle is presented. Using Monte Carlo simulation experiments as well as experimental MR data sets, the noise variance estimation methods are compared in terms of the root mean squared error (RMSE). The results show that the newly proposed method is superior in terms of the RMSE.
机译:磁共振(MR)图像的噪声方差的估计对于各种后处理任务很重要。在文献中,存在用于从MR图像估计噪声方差的各种方法,但是其中大多数方法都需要用户交互和/或多个(完全对齐的)图像。在本文中,我们专注于基于直方图的自动噪声方差估计技术。回顾了先前描述的方法,并提出了一种基于最大似然(ML)原理的新方法。使用蒙特卡罗模拟实验以及实验MR数据集,根据均方根误差(RMSE)比较了噪声方差估计方法。结果表明,新提出的方法在RMSE方面是优越的。

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