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首页> 外文期刊>Journal of Alzheimer's disease: JAD >Independent Component Analysis-Based Classification of Alzheimer's Disease MRI Data
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Independent Component Analysis-Based Classification of Alzheimer's Disease MRI Data

机译:基于独立成分分析的阿尔茨海默氏病MRI数据分类

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摘要

There is an unmet medical need to identify neuroimaging biomarkers that allow us to accurately diagnose and monitor Alzheimer's disease (AD) at its very early stages and to assess the response to AD-modifying therapies. To a certain extent, volumetric and functional magnetic resonance imaging (fMRI) studies can detect changes in structure, cerebral blood flow, and blood oxygenation that distinguish AD and mild cognitive impairment (MCI) subjects from healthy control (HC) subjects. However, it has been challenging to use fully automated MRI analytic methods to identify potential AD neuroimaging biomarkers. We have thus proposed a method based on independent component analysis (ICA) for studying potential AD-related MR image features that can be coupled with the use of support vector machine (SVM) for classifying scans into categories of AD, MCI, and HC subjects. The MRI data were selected from the Open Access Series of Imaging Studies (OASIS) and the Alzheimer's Disease Neuroimaging Initiative databases. The experimental results showed that the ICA method coupled with SVM classifier can differentiate AD and MCI patients from HC subjects, although further methodological improvement in the analytic method and inclusion of additional variables may be required for optimal classification.
机译:识别神经影像生物标志物使我们能够在其非常早期阶段就准确诊断和监测阿尔茨海默氏病(AD)并评估对AD修饰疗法的反应,这是一种尚未满足的医疗需求。在一定程度上,体积和功能磁共振成像(fMRI)研究可以检测结构,脑血流和血液氧合的变化,从而将AD和轻度认知障碍(MCI)受试者与健康对照(HC)受试者区分开。但是,使用全自动MRI分析方法来识别潜在的AD神经影像生物标志物一直是一个挑战。因此,我们提出了一种基于独立成分分析(ICA)的方法来研究与AD相关的潜在MR图像特征,该方法可以与支持向量机(SVM)结合使用,以将扫描分为AD,MCI和HC对象类别。 MRI数据选自影像研究的开放获取系列(OASIS)和阿尔茨海默氏病神经影像计划数据库。实验结果表明,ICA方法与SVM分类器相结合可以区分AD和MCI患者与HC受试者,尽管可能需要对分析方法进行进一步的方法改进并包括其他变量才能进行最佳分类。

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