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Efficient Algorithms for a Brain Computer Interface: Performance Studies

机译:高效的脑电脑界面算法:性能研究

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The design of a reliable Brain Computer Interface (BCI) is a very interesting topic in the Assistive Technology field because it would allow to people with very severe limitations to interact with his environment using electronic devices. This paper describes an architectural proposal for a BCI along with the results of a full test set. Proposed architecture has a three step structure: preprocessing, feature extraction and classification; tests have been conducted with twelve subjects of different gender and ages. Analysis of the data obtained in tests shows that the best performance in almost every circumstance can be achieved with a combination of Fast Fourier Transform and Wavelets (FFT-WT) as feature extraction step and Support Vector Machines (SVM) as classification step.
机译:可靠的大脑接口(BCI)的设计是辅助技术领域的一个非常有趣的话题,因为它将允许具有非常严重的局限性的人使用电子设备与他的环境互动。本文介绍了BCI的架构建议以及完整测试集的结果。建议的架构有三步结构:预处理,特征提取和分类;已经用12个不同的性别和年龄进行了测试。测试中获得的数据的分析表明,几乎所有情况都可以通过快速傅里叶变换和小波(FFT-WT)作为特征提取步骤和支持向量机(SVM)作为分类步骤来实现最佳性能。

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