基于HilbertHuang变换的SSVEP相位提取
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1.广西大学计算机与电子信息学院 南宁 530004; 2.广西医科大学基础医学院 南宁 530021

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TN911.7

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国家自然科学基金(61161009)、广西自然科学基金(2016GXNSFAA380068)、广西高校中青年教师基础能力提升项目(KY2016LX043)资助


SSVEP phase extraction based on HilbertHuang transform
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1.College of Computer and Electronics Information, Guangxi University, Nanning 530004, China; 2.College of Preclinical Medicine, Guangxi Medical University, Nanning 530021, China

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    摘要:

    稳态视觉诱发电位(steadystate visual evoked potential, SSVEP)被广泛应用于脑机接口和大脑的认知研究,相位信息是其重要的特征指标之一。针对快速傅里叶变换在SSVEP相位提取中受不确定性原理约束的特点,提出了一种基于HilbertHuang变换的SSVEP相位提取方法。该方法通过经验模态分解将脑电信号分解为一系列固有模态函数(intrinsic mode functions ,IMF),并通过分析各模态函数瞬时频率的均值判断该IMF分量是否属于噪声。若为噪声则将其从原始信号中滤除,再对滤波后的各IMF分量进行Hilbert变换,并与基准信号做运算即可求得SSVEP相位。实验结果表明,与快速傅里叶法相比该方法可在去除噪声分量的同时提取SSVEP的相位信息,且具有较高的准确率、精度和自适应性。

    Abstract:

    Steady state visual evoked potential (SSVEP) has been widely applied in brain computer interface (BCI) systems and brain’s cognitive research, phase feature is one of the important characteristics of SSVEP. Aiming at the uncertainty principle constraint of the fast Fourier transform (FFT) in SSVEP phase extraction, a phase extraction method based on HilbertHuang transform is proposed. In this method, the electroencephalogram signal is decomposed into a series of intrinsic mode functions (IMF) by empirical mode decomposition, and the mean value of the instantaneous frequency of each modal function is analyzed to determine whether the IMF component belongs to noise. Filtering the noise IMF components to get the electroencephalogram IMF components, on which is performed Hilbert transform to obtain the phase of SSVEP by operating with reference signal. Compared with FFT phase extraction, the experimental results show that the proposed mothed can extract the phase information of SSVEP while removing the noise components. It also has better accuracy, precision and adaptability.

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赵隆,覃玉荣,陈晓蒙,陈妮.基于HilbertHuang变换的SSVEP相位提取[J].电子测量技术,2017,40(9):186-192

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  • 在线发布日期: 2017-11-22
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