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Multivariate analysis of dual-point amyloid PET intended to assist the diagnosis of Alzheimer's disease

机译:双点淀粉样肽的多变量分析,用于协助阿尔茨海默病的诊断

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Several studies have recently suggested that amyloid Positron Emission Tomography (PET) data acquired immediately after the radiotracer injection provide information related to the brain metabolism, similar to that contained in F-18-Fluorodeoxyglucose (FDG) PET neuroimages. If corroborated, it would allow us to acquire information about brain injury and potential brain amyloid deposits in a single examination, using a dual-point protocol.In this work we assess the equivalence between early F-18-Florbetaben (FBB) PET and F-18-FDG PET data using multivariate approaches based on machine learning. In addition, we propose several systems based on data fusion that take advantage of the additional information provided by dual-point amyloid PET examinations. The proposed systems perform an initial dimensionality reduction of the data using a partial-least-square-based algorithm and then combine early and standard PET acquisitions using two approaches: multiple kernel learning (intermediate fusion) or an ensemble of two Support Vector Machine classifiers (late fusion). The proposed approaches were evaluated and compared with other fusion techniques using data from 43 subjects with cognitive impairments. They achieved a good trade-off between sensitivity and specificity and higher accuracy rates than systems based on single-modality approaches such as standard F-18-FBB PET data or F-18-FDG PET neuroimages. (C) 2020 Elsevier B.V. All rights reserved.
机译:最近提出了几项研究表明,淀粉样蛋白正电子辐射断层扫描(PET)数据立即在放射性机构注射后立即获得,提供与脑新陈代谢相关的信息,类似于F-18-氟氧氧(FDG)PET神经显口镜中所含的含量。如果证实,它将允许我们使用双点协议在单一检查中获取有关脑损伤和潜在脑淀粉样沉积物的信息。在这项工作中,我们评估了早期的F-18-Florbetaben(FBB)PET和F之间的等价物-18-FDG使用基于机器学习的多变量方法的PET数据。此外,我们提出了基于数据融合的多个系统,利用双点淀粉样宠物检查提供的附加信息。所提出的系统使用基于部分最小二乘的算法对数据进行初始维度降低,然后使用两种方法组合早期和标准宠物采集:多个内核学习(中间融合)或两个支持向量机分类器的集合(晚期融合)。使用来自43个受试者的数据的数据评估并与其他具有认知障碍的融合技术进行评估。它们之间的敏感性和特异性与基于单片式方法(如标准F-18-FBB PET数据或F-18-FDG PET神经镜)等系统的良好折衷和高精度率。 (c)2020 Elsevier B.v.保留所有权利。

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