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Feature fusion for improving performance of motor imagery brain-computer interface system

机译:用于提高电动机图像脑 - 计算机接口系统性能的特征融合

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A brain-computer interface (BCI) is a system that makes communication between an external device and the brain based on the brain's neural activity. This communication is conducted by analyzing brain signals, so extracting and selecting those features of the brain signals that distinguish between humans' different activities are essentially important. In this study, first, the brain signal is divided into frequency sub-bands using ConstantQ filters, which allows achieving better frequency resolution in lower frequencies and also the better temporal resolution in higher frequencies. Then, appropriate features in temporal, spatial, and spectral domains are extracted from the considered frequency sub-bands to improve the motor imagery classification. Three different ranking methods including Fisher's method, ReliefF, and mRMR are used to select the features; due to their specific criteria, they can help the best selection for the motor imagery classification. Finally, the results obtained from the selection stage are fused using the Dempster-Shafer evidence method. The proposed technique is applied to the BCI 2008-2b competition dataset, which achieves a Kappa score of 0.718. The results show the capability and excellent performance of the proposed method in comparison with the state-of-the-art studies.
机译:脑电脑接口(BCI)是一种系统,该系统基于大脑的神经活动在外部设备和大脑之间进行通信。通过分析脑信号进行该通信,因此提取和选择区分人类不同活动的大脑信号的特征基本上是重要的。在本研究中,首先,使用常数Q滤波器将脑信号分成频率子带,这允许在较低频率下实现更好的频率分辨率以及更高频率的时间分辨率。然后,从考虑的频率子带中提取时间,空间和频谱域中的适当特征以改善电动机图像分类。三种不同的排名方法包括Fisher方法,Relieff和MRMR,用于选择特征;由于其特定标准,它们可以帮助最佳选择电机图像分类。最后,从选择阶段获得的结果使用Dempster-Shafer证据方法融合。该提出的技术适用于BCI 2008-2B竞争数据集,该数据集实现了κ评分为0.718。结果表明,与最先进的研究相比,该方法的能力和优异的性能。

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