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Impact of Time-Frequency Representation to the Generalization Ability of Synthesized Time-Frequency Spatial Patterns Algorithm in Brain Computer Interface

机译:时频表示对脑界面综合时频空间模式算法的泛化能力的影响

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This paper focuses on the problem of how time-frequency representation influences the generalization ability of the 'synthesized time-frequency spatial pattern (TFSP)' algorithm in Brain Computer Interface (BCI) for classification. TFSP methods use time-frequency analysis to extract features in both time and frequency domains. Different time-frequency analysis methods have been used before. However, it is still unknown how these different approaches influence the generalization ability. We compared the performance of three different TFSP methods in classifying 3 stroke survivors' intention in hand opening and closing. Each of these TFSP methods uses different time-frequency analysis approaches with different time-frequency resolutions. Our results show that a high resolution in time-frequency resolution doesn't guarantee better generalization ability. It seems that although large redundancy in feature reduces the generalization ability of TFSP method, certain redundancy is necessary for achieving high generalization ability.
机译:本文重点介绍时频表示如何影响脑电脑接口(BCI)中的“合成时频空间模式(TFSP)”算法的泛化能力的问题。 TFSP方法使用时频分析来提取时间和频率域中的特征。之前使用了不同的时间频分析方法。但是,仍然是如何影响泛化能力的不同方法。我们将三种不同TFSP方法的性能进行了比较,在分类3中风幸存者的手中打开和关闭方面的意图。这些TFSP方法中的每一个都使用不同的时频分辨率的不同时间频率分析方法。我们的结果表明,时间频分辨率的高分辨率不保证更好的泛化能力。似乎虽然特征的较大冗余降低了TFSP方法的泛化能力,但仍然需要某些冗余来实现高泛化能力。

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