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EEG and MRI Data Fusion for Early Diagnosis of Alzheimer's Disease

机译:脑电图和MRI数据融合,用于早期诊断阿尔茨海默病

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The prevalence of Alzheimer's disease (AD) is rising alarmingly as the average age of our population increases. There is no treatment to halt or slow the pathology responsible for AD, however, new drugs are promising to reduce the rate of progression. On the other hand, the efficacy of these new medications critically depends on our ability to diagnose AD at the earliest stage. Currently AD is diagnosed through longitudinal clinical evaluations, which are available only at specialized dementia clinics, hence beyond financial and geographic reach of most patients. Automated diagnosis tools that can be made available to community hospitals would therefore be very beneficial. To that end, we have previously shown that the event related potentials obtained from different scalp locations can be effectively used for early diagnosis of AD using an ensemble of classifiers based decision fusion approach. In this study, we expand our data fusion approach to include MRI based measures of regional brain atrophy. Our initial results indicate that ERPs and MRI carry complementary information, and the combination of these heterogeneous data sources using a decision fusion approach can significantly improve diagnostic accuracy.
机译:随着我们人口的平均年龄增加,阿尔茨海默病的患病率令人惊讶地升高。然而,没有治疗或减缓对广告负责的病理学,然而,新的药物很有希望降低进展速度。另一方面,这些新药物的疗效重视依赖性取决于我们在最早阶段诊断广告的能力。目前,通过纵向临床评估诊断,仅在专业的痴呆诊所可用,因此超出大多数患者的金融和地理范围。因此,可以提供给社区医院的自动诊断工具将非常有益。为此,我们先前已经表明,使用基于分类器的决策融合方法的集合可以有效地用于从不同的头皮位置获得的事件相关电位用于使用分类器的集合来诊断广告。在这项研究中,我们扩展了我们的数据融合方法,包括基于MRI的区域脑萎缩措施。我们的初始结果表明ERP和MRI携带互补信息,并且使用决策融合方法的这些异构数据源的组合可以显着提高诊断准确性。

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