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Alzheimer's detection at early stage using local measures on MRI: A comparative study on local measures

机译:Alzheimer在早期使用当地措施对MRI的措施进行检测:对当地措施的比较研究

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Alzheimer's disease (AD) is a Dementia among older people which causes neurological degradation. Mild Cognitive Impairment [1] (MCI) is a condition which could progress and then become AD but is not explicitly visible in one's behavior. This paper presents a strategic approach for recognizing MCI at early stage using Magnetic Resonance Imaging (MRI). Initially Grey Matter (GM) is segmented and Local Patterns is extracted from it This study explores the ability of Local Patterns to classify between Normal, Mild Cognitive Impairment (MCI) and AD. This study is based on the fact that GM volume loss in the MCI group compared to Normal Aging and AD is greater and reports the classification accuracy of various Local Patterns. Local Graph Structure shows greater accuracy compared to other Local Patterns.
机译:阿尔茨海默病(Ad)是老年人的痴呆,导致神经病学降解。轻度认知障碍[1](MCI)是一个可以进展的条件,然后成为广告,但在一个人的行为中没有明确可见。本文介绍了使用磁共振成像(MRI)在早期识别MCI的战略方法。最初的灰质物质(GM)被分段,并且从中提取本地模式,本研究探讨了本地模式在正常,轻度认知障碍(MCI)和广告之间分类的能力。本研究基于MCI集团的GM体积损失与正常老化和广告相比,增加了各种本地模式的分类准确性。与其他本地模式相比,本地图形结构显示更大的准确性。

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