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Functional Clustering approach for the analysis of Stereo-EEG activity patterns in correspondence of epileptic seizures

机译:癫痫发作对应癫痫发作时立体脑电图活动模式分析的功能聚类方法

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In this study, a functional clustering approach is proposed and tested for the identification of brain functional networks emerging during sleep-related seizures. Stereo-EEG signals recorded in patients with Type II Focal Cortical Dysplasia (FCD type II), were analyzed. This novel approach is able to identify the network configuration changes in pre-ictal and early ictal periods, by grouping Stereo-EEG signals on the basis of the Cluster Index, after wavelet multiscale decomposition. Results showed that the proposed method is able to detect clusters of interacting leads, mainly overlapped on the Epileptogenic Zone (EZ) identified by a clinical expert, with distinctive configurations related to analyzed frequency ranges. This suggested the presence of coupling activities between the elements of the epileptic system at different frequency scales.
机译:在该研究中,提出了一种功能聚类方法,并测试并测试了在睡眠相关癫痫发作期间出现的脑功能网络的识别。分析了II型局灶性皮质发育不良(II型)患者记录的立体脑电图信号。这种新方法能够通过基于集群索引在小波多尺度分解之后分组立体声eEG信号来识别预ICTAL和早期ICTAL期间的网络配置变化。结果表明,该方法能够检测主要在临床专家鉴定的癫痫区(EZ)上的相互作用引线簇,其与分析频率范围有关的独特配置。这表明存在在不同频率尺度下癫痫系统的元素之间的偶联活动。

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