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Multiparametric computer-aided differential diagnosis of Alzheimer’s disease and frontotemporal dementia using structural and advanced MRI

机译:使用结构性和高级MRI进行多参数计算机辅助的阿尔茨海默氏病和额颞痴呆的鉴别诊断

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摘要

textabstractObjectives: To investigate the added diagnostic value of arterial spin labelling (ASL) and diffusion tensor imaging (DTI) to structural MRI for computer-aided classification of Alzheimer's disease (AD), frontotemporal dementia (FTD), and controls. Methods: This retrospective study used MRI data from 24 early-onset AD and 33 early-onset FTD patients and 34 controls (CN). Classification was based on voxel-wise feature maps derived from structural MRI, ASL, and DTI. Support vector machines (SVMs) were trained to classify AD versus CN (AD-CN), FTD-CN, AD-FTD, and AD-FTD-CN (multi-class). Classification performance was assessed by the area under the receiver-operating-characteristic curve (AUC) and accuracy. Using SVM significance maps, we analysed contributions of brain regions. Results: Combining ASL and DTI with structural MRI resulted in higher classification performance for differential diagnosis of AD and FTD (AUC = 84%; p = 0.05) than using structural MRI by itself (AUC = 72%). The performance of ASL and DTI themselves did not improve over structural MRI. The classifications were driven by different brain regions for ASL and DTI than for structural MRI, suggesting complementary information. Conclusions: ASL and DTI are promising additions to structural MRI for classification of early-onset AD, early-onset FTD, and controls, and may improve the computer-aided differential diagnosis on a single-subject level. Key points: • Multiparametric MRI is promising for computer-aided diagnosis of early-onset AD and FTD.• Diagnosis is driven by different brain regions when using different MRI methods.• Combining structural MRI, ASL, and DTI may improve differential diagnosis of dementia.
机译:目的:研究动脉旋转标记(ASL)和扩散张量成像(DTI)在结构MRI上对阿尔茨海默病(AD),额颞痴呆(FTD)和对照的计算机辅助分类的附加诊断价值。方法:这项回顾性研究使用了24例早发AD和33例早发FTD患者以及34例对照(CN)的MRI数据。分类基于源自结构MRI,ASL和DTI的体素方向特征图。支持向量机(SVM)经过训练可以对AD与CN(AD-CN),FTD-CN,AD-FTD和AD-FTD-CN(多类)进行分类。通过接收器工作特性曲线(AUC)和准确性下的面积评估分类性能。使用支持向量机的重要性图,我们分析了大脑区域的贡献。结果:将ASL和DTI与结构MRI结合使用比对结构MRI本身(AUC = 72%)进行AD和FTD的鉴别诊断具有更高的分类性能(AUC = 84%; p = 0.05)。 ASL和DTI本身的性能并未比结构MRI有所提高。分类是由ASL和DTI的大脑区域不同,而不是由结构性MRI的大脑区域驱动的,这提示了补充信息。结论:ASL和DTI是结构性MRI的有前途的补充,可用于分类早发性AD,早发性FTD和对照,并可能改善单对象水平的计算机辅助鉴别诊断。关键点:•多参数MRI在计算机辅助诊断早发性AD和FTD方面很有前途。•使用不同的MRI方法时,由不同的大脑区域驱动诊断。•结合结构性MRI,ASL和DTI可以改善痴呆的鉴别诊断。

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