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Pixel-wise partial volume effects correction on arterial spin labeling magnetic resonance images

机译:动脉自旋标记磁共振图像的像素部分体积效应校正

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摘要

Arterial spin labeling is a recently emerging imaging modality in functional magnetic resonance, and it is widely acknowledged to be effective in directly measuring the cerebral blood flow of patients while being scanned, which makes it a promising indicator in contemporary dementia disease diagnosis studies. However, partial volume effects mainly caused by signal cross-contamination due to pixel heterogeneity and limited spatial resolution of the arterial spin labeling scanning protocol often prevent the cerebral blood flow from being accurately measured. In order to correct the partial volume effects, contemporary studies usually rely on neighboring pixles to solve indefinite equations of partial volume correction, which makes shortcomings of blurring and brain tissue details loss inevitable in their correction outcomes. In this study, a novel pixel-wise correction method is proposed to tackle partial volume effects in arterial spin labeling images. The main idea is to formalize the correction problem as a series of quadratic programming sub-problems using split-Bregman iterations, then formulate each sub-problem via the regularization of least absolute shrinkage and selection operator, and finally solve the regularization sub-problem via the fast proximal gradient descent approach. A real-patients database composed of 360 demented patients is incorporated for experimental evaluation of the pixel-wise method. Extensive experiments and comprehensive statistical analysis are carried out to demonstrate the superiority of the pixel-wise method with comparisons towards the popular region-based method. Promising results are reported from the statistical point of view.
机译:动脉自旋标记是功能磁共振中最近出现的一种成像方式,被广泛认为可以有效地直接测量被扫描患者的脑血流,这使其成为当代痴呆症诊断研究中的有希望的指标。但是,部分体积效应主要是由于像素异质性和信号自旋标记扫描协议的有限空间分辨率所引起的信号交叉污染而引起的,通常会妨碍对脑血流的精确测量。为了校正部分体积影响,当代研究通常依靠相邻的像素来解决部分体积校正的不确定方程,这使得模糊和脑组织细节丢失的缺点不可避免地出现在校正结果中。在这项研究中,提出了一种新颖的逐像素校正方法来解决动脉旋转标记图像中的部分体积效应。主要思想是使用split-Bregman迭代将校正问题形式化为一系列二次编程子问题,然后通过最小绝对收缩和选择算子的正则化公式化每个子问题,最后通过来解决正则化子问题。快速近端梯度下降方法。纳入由360名痴呆患者组成的真实患者数据库,用于逐像素方法的实验评估。进行了广泛的实验和全面的统计分析,以证明与传统的基于区域的方法相比,逐点方法的优越性。从统计角度报告有希望的结果。

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