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Using a chain of LVQ neural networks for pattern recognition of EEG signals related to intermittent photic-stimulation

机译:利用LVQ神经网络链进行了与间歇性光刺激相关的EEG信号的模式识别

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This work reports the use of neural networks for pattern recognition in electroencephalographic signals related to intermittent photic-stimulation. Due to the low signal/noise ratio of this kind of signal, it was necessary the use of a spectrogram as a predictor and a chain of LVQ neural networks. The efficiency of this pattern recognition structure was tested for many different configurations of the neural networks parameters and different volunteers. A direct relationship between the dimension of the neural networks and their performance was observed. Results so far encourage new experiments and demonstrate the feasibility of the proposed system for real-time pattern recognition of complex signals.
机译:这项工作报告了神经网络在与间歇光刺激相关的脑电图信号中的模式识别。由于这种信号的低信号/噪声比,需要使用光谱图作为预测器和LVQ神经网络链。测试该模式识别结构的效率对于神经网络参数和不同志愿者的许多不同配置。观察到神经网络的维度与其性能之间的直接关系。结果到目前为止鼓励新的实验,并展示所提出的系统对复杂信号的实时模式识别的可行性。

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