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Analysis of epileptic EEG signals in children by symbolic dynamics

机译:符号动态分析儿童癫痫脑电图信号

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Epilepsy is one of the most prevalent neurological disorders among children. The study of surface EEG signals in patients with epilepsy by techniques based on symbolic dynamics can provide new insights into the epileptogenic process and may have considerable utility in the diagnosis and treatment of epilepsy. The goal of this work was to find patterns from a methodology based on symbolic dynamics to characterize seizures on surface EEG in pediatric patients with intractable epilepsy. A total of 76 seizures were analyzed by their pre-ictal, ictal and post-ictal phases. An analytic signal envelope algorithm was applied to each EEG segment and its performance was evaluated. Several variables were defined from the distribution of words constructed on the EEG transformed into symbols. The results showed strong evidences of detectable non-linear changes in the EEG dynamics from pre-ictal to ictal phase and from ictal to post-ictal phase, with an accuracy higher than 70%.
机译:癫痫是儿童中最普遍的神经障碍之一。基于象征性动态的技术技术对癫痫患者的表面脑电图的研究可以为癫痫过程提供新的见解,并且在癫痫的诊断和治疗中可能具有相当大的效用。这项工作的目标是从基于象征动力学的方法中找到模式,以表征难治性癫痫细胞患者表面脑电图的癫痫发作。通过其前ICTAL,ICTAL和ICTAL阶段分析了76个癫痫发作。将分析信号包络算法应用于每个EEG段,并评估其性能。几个变量是根据构造成符号的脑电图的单词的分布来定义。结果表明,从胰岛前ICTAL相对于ICTAL相和ICTAL对外ICTAL相,脑电图动力学的可检测非线性变化的强烈证明是强度,精度高于70%。

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