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Tsallis entropy as a biomarker for detection of Alzheimer's disease

机译:沙利氏熵作为检测阿尔茨海默氏病的生物标志物

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Alzheimer's disease (AD) and other forms of dementia are one of the major public health and social challenges of our time because of the large number of people affected. Early diagnosis is important for patients and their families to get maximum benefits from access to health and social care services and to plan for the future. EEG provides useful insight into brain functions and can play a useful role as a first line of decision-support tool for early detection and diagnosis of dementia. It is non-invasive, low-cost and has a high temporal resolution. The functions of brain cells are affected by damage caused by dementia and this in turn causes changes in the features of the EEG. Information theoretic methods have emerged as a potentially useful way to quantify changes in the EEG as biomarkers of dementia. Tsallis entropy has been shown to be one of the most promising information theoretic methods for quantifying changes in the EEG. In this paper, we develop the approach further. This has yielded an enhanced performance compared to existing approaches.
机译:由于受影响的人数众多,阿尔茨海默氏病(AD)和其他形式的痴呆症是当今时代的主要公共卫生和社会挑战之一。早期诊断对于患者及其家人从获得健康和社会护理服务中获得最大收益并为未来进行规划至关重要。脑电图提供了对大脑功能的有用见解,并且可以作为痴呆症的早期发现和诊断的一线决策支持工具发挥重要作用。它是非侵入性的,低成本的并且具有高时间分辨率。脑细胞的功能受痴呆引起的损害的影响,继而引起脑电图特征的改变。信息理论方法已经成为量化脑电图(痴呆症的生物标志物)变化的一种潜在有用的方法。 Tsallis熵已被证明是量化脑电图变化最有希望的信息理论方法之一。在本文中,我们将进一步开发该方法。与现有方法相比,这产生了增强的性能。

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