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挖掘癫痫性颅内脑电图信号中可重复的激活模式:在发作间期活动中的应用。

Mining reproducible activation patterns in epileptic intracerebral EEG signals: application to interictal activity.

作者信息

Bourien Jérôme, Bellanger J J, Bartolomei Fabrice, Chauvel Patrick, Wendling Fabrice

机构信息

Laboratoire Traitement du Signal et de L'Image, INSERM, Université de Rennes 1, Campus de Beaulieu, 35042 Rennes Cedex, France.

出版信息

IEEE Trans Biomed Eng. 2004 Feb;51(2):304-15. doi: 10.1109/TBME.2003.820397.

Abstract

The study of interictal transient events may substantially complement the analysis of seizures in the presurgical evaluation of intractable epilepsy. A comprehensive methodology of quantifying reproducibility of activation patterns in intracerebral electroencephalography signals is presented. It may be applied to various forms of transient epileptic events under the assumption that a time of occurrence may be assigned to them. In this paper, the method is used on two different forms of interictal events (interictal spikes or sharpwaves and transient bursts of fast activity). The methodology is based on signal processing and data mining algorithms and proceeds in three steps: 1) detection of transient paroxysmal events (monochannel event); 2) identification of quasisynchronous transient paroxysmal events (multichannel events); and 3) automatic extraction of similar activation patterns. Results show that the methodology allows reproducible sequential activation sets to be identified from signals recorded in four patients. Potential advantages of the method are discussed with respect to other approaches.

摘要

发作间期瞬态事件的研究可能会在难治性癫痫的术前评估中对癫痫发作的分析起到实质性的补充作用。本文提出了一种用于量化脑内脑电图信号激活模式再现性的综合方法。在可以为各种形式的瞬态癫痫事件确定发生时间的假设下,该方法可应用于这些事件。在本文中,该方法被用于两种不同形式的发作间期事件(发作间期棘波或锐波以及快速活动的瞬态爆发)。该方法基于信号处理和数据挖掘算法,分三步进行:1)检测瞬态阵发性事件(单通道事件);2)识别准同步瞬态阵发性事件(多通道事件);3)自动提取相似的激活模式。结果表明,该方法能够从四名患者记录的信号中识别出可重复的序列激活集。并针对其他方法讨论了该方法的潜在优势。

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