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Simulation of ictal EEG with a neuronal population model

机译:用神经元群体模拟模拟ICTAL脑电图

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In order to analyze the behavior of EEG and its neural physiological mechanism, a neuronal population model has been adopted to simulate ictal EEG signals, and the modeling performance has been analyzed in this work. A delay unit and a gain unit were added to Wendling model to fit EEG signals in time domain, and genetic algorithm was used to identify an optimal set including of five parameters to minimize the error between real EEG and simulated EEG. The results show that the model can produce an approximation of the real EEG signal well.
机译:为了分析EEG及其神经生理机制的行为,采用了神经元群体模型来模拟ICTAL EEG信号,并在这项工作中分析了建模性能。将延迟单元和增益单元添加到Wendling模型中以适合时域中的EEG信号,并且遗传算法用于识别包括五个参数的最佳集合,以最小化实际脑电图和模拟EEG之间的误差。结果表明,该模型可以良好地产生真实脑电图信号的近似值。

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