P300 Detection Adaptive Channel Selection Method under the Multiple Kernel Learning

Wenxin Guo, Weiwei Qin, Dezhong Zheng, Tainian Song, Pengfei Zhang
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引用次数: 2

Abstract

This study presents an adaptive channel selection method for P300 detection. The proposed adaptive channel selection method selects the channel efficiently by introducing multiple kernel learning. The multiple kernel learning proposed in this paper selects the model, maps the EEG signals in different acquisition channels into different feature spaces through different kernel functions at first. Then it constructs multiple kernel functions by linear weighting and uses multiple kernel classifier training process to learn weight coefficients to adaptively select the optimal sampling set channel combination. The experiment demonstrates that the adaptive channel selection method under the multiple kernel learning is reasonable.
多核学习下的P300检测自适应信道选择方法
提出了一种用于P300检测的自适应信道选择方法。提出的自适应信道选择方法通过引入多核学习来有效地选择信道。本文提出的多核学习选择模型,首先通过不同的核函数将不同采集通道的脑电信号映射到不同的特征空间。然后通过线性加权构造多个核函数,利用多核分类器训练过程学习权系数,自适应选择最优的采样集信道组合;实验表明,多核学习下的自适应信道选择方法是合理的。
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