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Sparse Bump Sonification: A New Tool for Multichannel EEG Diagnosis of Mental Disorders; Application to the Detection of the Early Stage of Alzheimer's Disease

机译:稀疏凸出声波:一种用于心理疾病多通道脑电图诊断的新工具;在阿尔茨海默氏病早期检测中的应用

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This paper investigates the use of sound and music as a means of representing and analyzing multichannel EEG recordings. Specific focus is given to applications in early detection and diagnosis of early stage of Alzheimer's disease. We propose here a novel approach based on multi channel sonification, with a time-frequency representation and sparsification process using bump modeling. The fundamental question explored in this paper is whether clinically valuable information, not available from the conventional graphical EEG representation, might become apparent through an audio representation. Preliminary evaluation of the obtained music score - by sample entropy, number of notes, and synchronous activity - incurs promising results.
机译:本文研究了声音和音乐作为代表和分析多通道EEG录音的一种手段。特别关注于阿尔茨海默氏病早期的早期检测和诊断中的应用。我们在这里提出一种基于多通道超声处理的新方法,该方法具有使用凹凸模型的时频表示和稀疏化过程。本文探讨的基本问题是,通过音频表示,是否可以从传统的图形EEG表示中获得临床上有价值的信息。对获得的乐谱的初步评估-通过样本熵,音符数量和同步活动-产生了可喜的结果。

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