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Shape Analysis of White Matter Tracts via the Laplace-Beltrami Spectrum

机译:LAPLACE-BELTRAMI谱的白质散布形状分析

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Diffusion-weighted magnetic resonance imaging (dMRI) allows for non-invasive, detailed examination of the white matter structures of the brain. White matter tract specific measures based on either the diffusion tensor model (e.g. FA, ADC, and MD) or tractography (e.g. volume, streamline count or density) are often compared between groups of subjects to localize differences within the white matter. Less commonly examined is the shape of the individual white matter tracts. In this paper, we propose to use the Laplace-Beltrami (LB) spectrum as a descriptor of the shape of white matter tracts. We provide an open, automated pipeline for the computation of the LB spectrum on segmented white matter tracts and demonstrate its efficacy through machine learning classification experiments. We show that the LB spectrum allows for distinguishing subjects diagnosed with bipolar disorder from age and sex matched healthy controls, with classification accuracy reaching 95%. We further demonstrate that the results cannot be explained by traditional measures, such as tract volume, streamline count, or mean and total length. The results indicate that there is valuable information in the anatomical shape of the human white matter tracts.
机译:扩散加权磁共振成像(DMRI)允许无侵入性,详细地检查大脑的白质结构。基于扩散张量模型(例如FA,ADC和MD)或牵引(例如,体积,流线数或密度)的白质散测量通常比较在白质内差异的受试者组之间。较少常见的是单个白质龟的形状。在本文中,我们建议使用Laplace-Beltrami(LB)光谱作为白质束形状的描述符。我们提供一个开放式自动化管道,用于计算分段白质散布的LB谱,并通过机器学习分类实验证明其功效。我们表明LB谱允许区分诊断患有双相障碍的受试者,从年龄和性匹配的健康对照,分类准确率达到95%。我们进一步证明了结果不能通过传统措施解释,例如道路体积,流线数或平均值和总长度。结果表明,人白质龟的解剖学形状中存在有价值的信息。

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