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A New Statistical Image Analysis Approach and Its Application to Hippocampal Morphometry

机译:统计图像分析的新方法及其在海马形态计量学中的应用

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摘要

In this work, we propose a novel and powerful image analysis framework for hippocampal morphometry in early mild cognitive impairment (EMCI), an early prodromal stage of Alzheimer’s disease (AD). We create a hippocampal surface atlas with subfield information, model each hippocampus using the SPHARM technique, and register it to the atlas to extract surface deformation signals. We propose a new alternative to standard random field theory (RFT) and permutation image analysis methods, Statistical Parametric Mapping (SPM) Distribution Analysis or SPM-DA, to perform statistical shape analysis and compare its performance with that of RFT methods on both simulated and real hippocampal surface data. The major strengths of our framework are twofold: (a) SPM-DA provides potentially more powerful algorithms than standard RFT methods for detecting weak signals, and (b) the framework embraces the important hippocampal subfield information for improved biological interpretation. We demonstrate the effectiveness of our method via an application to an AD cohort, where an SPM-DA method detects meaningful hippocampal shape differences in EMCI that are undetected by standard RFT methods.
机译:在这项工作中,我们为阿尔茨海默氏病(AD)的前驱早期的早期轻度认知障碍(EMCI)的海马形态测量提出了一种新颖而强大的图像分析框架。我们使用子场信息创建海马表面图集,使用SPHARM技术对每个海马模型进行建模,然后将其注册到图集以提取表面变形信号。我们提出了一种新的替代标准随机场理论(RFT)和置换图像分析方法,统计参数映射(SPM)分布分析或SPM-DA的方法,以进行统计形状分析并将其性能与RFT方法在模拟和分析中的性能进行比较真实的海马表面数据。我们框架的主要优势是双重的:(a)SPM-DA提供了比标准RFT方法更强大的算法来检测弱信号,并且(b)框架包含了重要的海马亚领域信息以改善生物学解释。我们通过对AD队列的应用证明了我们方法的有效性,其中SPM-DA方法检测到了标准RFT方法无法检测到的EMCI中有意义的海马形状差异。

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