Electroencephalogram signal classification method combining improved EMD algorithm with wavelet packet transformation and CSP algorithm
A technology of wavelet packet transform and EEG signal, which is applied in computing, computer components, instruments, etc., can solve problems such as a large number of input channels, lack of frequency domain information, and development limitations, achieve high time-frequency resolution, and improve signal-to-noise than the effect
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[0060] The present invention will be further described below in conjunction with embodiment.
[0061] Such as figure 1 Shown, method of the present invention comprises the steps:
[0062] Step 1: Select the EEG signals of 9 subjects as the training set and test set, and analyze the data of the C3 and C4 channels of a single subject respectively. The sampling frequency is 250Hz, and the sampling data is filtered by a 0.5-100Hz bandpass filter For preprocessing, 50Hz notch filter.
[0063] Step 2: Perform wavelet packet transformation on the preprocessed EEG signal. Since the frequency bandwidth of the EEG signal in the data set is 100Hz. The db4 wavelet base is used to decompose the EEG signal into four layers of wavelet packet, and 16 frequency components are obtained after decomposition. Based on the frequency, the signal is decomposed into several narrowband signals after wavelet packet transformation. Minimum resolution Δf = 100 Hz / 16 = 6.25 Hz. Therefore, by reconstr...
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