Manuel A Zúñiga, Ángela Acero-González, Juan C Restrepo-Castro, Miguel Ángel Uribe-Laverde, Daniel A Botero-Rosas, Borja I Ferreras, María C Molina-Borda, María Paula Villa-Reyes
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Machine learning-based studies show good discrimination capacity.</p><p><strong>Conclusions: </strong>There is significant difficulty in comparing multiple studies due to their heterogeneity; however, changes in Multiscale Entropy (MSE) scales or a decrease in entropy levels are considered useful for determining the presence of AD and measuring its severity.</p>","PeriodicalId":7251,"journal":{"name":"Actas espanolas de psiquiatria","volume":"52 3","pages":"347-364"},"PeriodicalIF":1.0000,"publicationDate":"2024-06-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11194159/pdf/","citationCount":"0","resultStr":"{\"title\":\"Is EEG Entropy a Useful Measure for Alzheimer's Disease?\",\"authors\":\"Manuel A Zúñiga, Ángela Acero-González, Juan C Restrepo-Castro, Miguel Ángel Uribe-Laverde, Daniel A Botero-Rosas, Borja I Ferreras, María C Molina-Borda, María Paula Villa-Reyes\",\"doi\":\"10.62641/aep.v52i3.1632\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><strong>Background: </strong>The number of individuals diagnosed with Alzheimer's disease (AD) has increased, and it is estimated to continue rising in the coming years. 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引用次数: 0
摘要
背景:被诊断患有阿尔茨海默病(AD)的人数不断增加,预计未来几年还会继续上升。由于发病和病程的不同、临床表现的多样性以及沉积物生物标志物测量的适应症,该病的诊断具有挑战性。因此,有必要开发更精确、创伤更小的诊断工具。多项研究已考虑使用脑电图(EEG)熵测量作为 AD 发病和病程的指标。熵被认为是一种合适的潜在指标,因为人们发现熵的复杂性变化可能与 AD 等特定病症有关:按照 PRISMA 指南,在 4 个科学数据库中进行了文献检索,在筛选和过滤后对 40 篇文章进行了分析:熵的测量方法多种多样,但样本熵(SampEn)和多尺度熵(MSE)的应用最为广泛(21/40)。总体而言,在将患者与对照组进行比较时发现,患者在各方面的熵值都较低(20/40)。与认知能力下降程度的相关性研究结果不太一致,与神经精神症状(2/40)或治疗反应的相关性研究结果也较少(2/40),不过大多数研究表明,熵值越低,病情越严重。基于机器学习的研究显示出良好的辨别能力:然而,多尺度熵(MSE)量表的变化或熵水平的下降被认为有助于确定是否存在注意力缺失症并衡量其严重程度。
Is EEG Entropy a Useful Measure for Alzheimer's Disease?
Background: The number of individuals diagnosed with Alzheimer's disease (AD) has increased, and it is estimated to continue rising in the coming years. The diagnosis of this disease is challenging due to variations in onset and course, its diverse clinical manifestations, and the indications for measuring deposit biomarkers. Hence, there is a need to develop more precise and less invasive diagnostic tools. Multiple studies have considered using electroencephalography (EEG) entropy measures as an indicator of the onset and course of AD. Entropy is deemed suitable as a potential indicator based on the discovery that variations in its complexity can be associated with specific pathologies such as AD.
Methodology: Following PRISMA guidelines, a literature search was conducted in 4 scientific databases, and 40 articles were analyzed after discarding and filtering.
Results: There is a diversity in entropy measures; however, Sample Entropy (SampEn) and Multiscale Entropy (MSE) are the most widely used (21/40). In general, it is found that when comparing patients with controls, patients exhibit lower entropy (20/40) in various areas. Findings of correlation with the level of cognitive decline are less consistent, and with neuropsychiatric symptoms (2/40) or treatment response less explored (2/40), although most studies show lower entropy with greater severity. Machine learning-based studies show good discrimination capacity.
Conclusions: There is significant difficulty in comparing multiple studies due to their heterogeneity; however, changes in Multiscale Entropy (MSE) scales or a decrease in entropy levels are considered useful for determining the presence of AD and measuring its severity.
期刊介绍:
Actas Españolas de Psiquiatría publicará de manera preferente trabajos relacionados con investigación clínica en el
área de la Psiquiatría, la Psicología Clínica y la Salud Mental.