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Extracting common spatial patterns based on wavelet lifting for brain computer interface design

机译:基于小波提升的基于脑电路界面设计的小波提升,提取常见空间模式

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Brain computer interfacing (BCI) offers the possibility to interact with machines uniquely relying on the user's thoughts. Although wavelet analysis has been used in the BCI field there is evidence that standard wavelet families, such as Daubechies, may not be the optimal approach. In this study, we developed a novel wavelet lifting scheme, specifically for BCI design. The lifting transform in this new approach is based on common spatial patterns (CSP), which allows to exploit the signal characteristics in temporal, spectral and spatial domains simultaneously. Experimental results show that in BCI applications the new wavelet outperforms several first generation wavelet families in terms of classification accuracy and resource consumption.
机译:大脑电脑接口(BCI)提供了与独特依赖用户思想的机器互动的可能性。尽管在BCI领域中使用了小波分析,但有证据表明标准小波家庭,如Daubechies,可能不是最佳方法。在这项研究中,我们开发了一种小说小波提升方案,专门用于BCI设计。这种新方法的提升变换基于公共空间模式(CSP),其允许同时利用时间,光谱和空间域中的信号特性。实验结果表明,在BCI应用中,新小波在分类准确度和资源消耗方面优于几个第一代小波家族。

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