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Feature Extraction Method for EEG Waves by Using MAP Detector of Input Signals with Multi-Discrete-Level Amplitude

机译:利用多离散幅度输入信号的MAP检测器提取脑电波特征

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In this paper, a dynamical model is introduced to develop a new automatic stage determination system of human sleep electroencephalogram (EEG) not using the wave pattern recognition step. The EEG generating mechanism is modeled by a damped system excited by impulse input process which subjects to Poission process whose amplitude has a transition property. Furthermore, A Maximum A Posteriori (MAP) method is modified to be applicable to the model. We can then extract useful information which is directly related to sleep stages based on the model and MAP detector.
机译:本文介绍了一种动力学模型,以开发一种不使用波动模式识别步骤的新型人体睡眠脑电图(EEG)自动阶段确定系统。 EEG产生机制是通过一个阻尼系统建模的,该阻尼系统是由脉冲输入过程激发的,该系统经历了具有跃迁特性的Poission过程。此外,修改了最大后验(MAP)方法以适用于该模型。然后,我们可以基于模型和MAP检测器提取与睡眠阶段直接相关的有用信息。

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