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Common spatial pattern 公共空间模式滤波是处理脑电信号的一种方法,它可以使两类想象运动EEG的协方差之间的差距最大化,便于后期的分类处理。-Common spatial pattern model of public space filtering is a method of EEG signal processing, it can make two types of movement EEG covariance imagine the gap between the
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脑电想象运动的csp特征提取分类算法 matlab平台,通过投票可以直接扩展到多类-Imagine the movement csp EEG feature extraction classification algorithm matlab platform, through the vote can be directly extended to multiple classes
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小波神经网络用于分类的基础源码,供参考!-Wavelet neural network for classification of basic source for information!
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Matlab source for blind classification of EEG data (BCI competition II data set IV)
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里面有了巧妙的方法提高了脑电信号分类准确性,有做EEG分类的可以看看。-There has been a clever way to improve the classification accuracy of EEG, and EEG classification can be done to see.
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基于多通道脑电特征运动意识任务的分类,-Characteristics of movement based on multi-channel EEG classification of mental tasks,
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用于脑电信号的检查和分类
高度集成化,简单容易-Used for EEG examination and classification of highly integrated, simple and easy to
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this file about CLASSIFICATION OF CHAOTIC SIGNALS USING HMM CLASSIFIERS: EEG-BASED MENTAL TASK CLASSIFICATION
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this matlab program is for EEG signal classification
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EEG signal classification by SVM
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pca分类程序,主要用于脑电信号的分类。具有较好的分类精度!-pca classification procedures, mainly for the classification of EEG signals. Has better classification accuracy!
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EEG signal classification using wavelet feature extraction
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EEG signal classification using wavelet feature extraction
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EEG signal classification using wavelet feature extraction
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EEG signal classification using wavelet feature extraction
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基于mu节律能量的140组脑电信号的决策分类,从3s到9s之间不同决策时间点的识别率,最高为85 -140 mu rhythm-based energy group decision-making EEG classification, from 3s to 9s different decision points in time between the recognition rate up to 85
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EEG classification using neural networks1
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模糊C均值脑电分类并使用了支持向量机对比,其中支持向量机使用了三种方法参数寻优。-fuzzy C means clustering for EEG classification,and use the SVM for campare. The SVM applied three methods to find the optimal apartments.
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脑电信号的提取和特征分类还有滤波处理,适用于脑机接口技术中-EEG extraction and feature classification filtering process, applied to brain-computer interface technology
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DEAP数据集下的情绪识别分类,包括特征提取和分类(Emotion recognition classification based on deap data set, including feature extraction and classification)
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