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Biomarkers Selection Toward Early Detection of Alzheimer's Disease

机译:早期发现阿尔茨海默氏病的生物标志物选择

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Alzheimer's disease (AD) is a neurodegenerative brain disorder and the fifth leading cause of death among people aged 65 and older. Based on recent research, it was found that in addition to cognitive tests, quantitative biomarkers can be useful indicators for monitoring the progress from Mild Cognitive Impairment (MCI) to Alzheimer's disease. Hence, identifying the most relevant biomarkers and cognitive tests can lead to a more reliable and accurate diagnosis of AD. Therefore, this study aims to identify the most pertinent cognitive tests and biomarkers, features, to detect Alzheimer's disease. This aim is achieved by using six conventional feature selection methods. In addition, we used a feature combination approach to find the best subset of the features that can lead to the highest accuracy in differentiating between healthy subjects, early mild cognitive impairment (EMCI), and AD patients. Unlike conventional feature selection methods that select the Clinical Dementia Rating Scale Sum of Boxes (CDRSB) as a unique feature, the proposed feature combination method selects this CDRSB as well as the Middle temporal gyrus (MidTemp). The results show that this combination gives the highest accuracy in differentiating between cognitively normal (CN), EMCI, and AD groups.
机译:阿尔茨海默氏病(AD)是一种神经退行性脑部疾病,是65岁及65岁以上人群中第五大死亡原因。根据最近的研究,发现除了认知测试外,定量生物标志物还可作为监测从轻度认知障碍(MCI)到阿尔茨海默氏病进展的有用指标。因此,识别最相关的生物标志物和认知测试可以导致对AD的更可靠和准确的诊断。因此,本研究旨在确定最相关的认知测试和生物标记物,特征,以检测阿尔茨海默氏病。通过使用六种常规特征选择方法可以实现此目标。此外,我们使用一种特征组合方法来找到特征的最佳子集,从而可以在区分健康受试者,早期轻度认知障碍(EMCI)和AD患者时获得最高的准确性。与选择“临床痴呆症分级量表总和”(CDRSB)作为独特特征的常规特征选择方法不同,建议的特征组合方法选择了该CDRSB以及颞中回(MidTemp)。结果表明,这种组合在区分认知正常(CN)组,EMCI和AD组方面提供了最高的准确性。

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