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The Synergy between Complex Channel-Specific FIR Filter and Spatial Filter for Single-Trial EEG Classification

机译:单试验脑电分类的复杂通道专用FIR滤波器与空间滤波器之间的协同作用

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摘要

The common spatial pattern analysis (CSP), a frequently utilized feature extraction method in brain-computer-interface applications, is believed to be time-invariant and sensitive to noises, mainly due to an inherent shortcoming of purely relying on spatial filtering. Therefore, temporal/spectral filtering which can be very effective to counteract the unfavorable influence of noises is usually used as a supplement. This work integrates the CSP spatial filters with complex channel-specific finite impulse response (FIR) filters in a natural and intuitive manner. Each hybrid spatial-FIR filter is of high-order, data-driven and is unique to its corresponding channel. They are derived by introducing multiple time delays and regularization into conventional CSP. The general framework of the method follows that of CSP but performs better, as proven in single-trial classification tasks like event-related potential detection and motor imagery.
机译:常见的空间模式分析(CSP)是大脑计算机接口应用程序中经常使用的特征提取方法,被认为具有时间不变性并且对噪声敏感,这主要是由于纯粹依赖于空间滤波的固有缺点。因此,通常可以非常有效地用来抵消噪声的不利影响的时间/频谱滤波被用作补充。这项工作以自然和直观的方式将CSP空间滤波器与特定于通道的复杂有限脉冲响应(FIR)滤波器集成在一起。每个混合空间FIR滤波器都是高阶,数据驱动的,并且对于其相应的通道是唯一的。它们是通过在常规CSP中引入多个时间延迟和正则化而得出的。该方法的总体框架遵循CSP的框架,但性能更好,如单次尝试分类任务(如事件相关的电位检测和运动图像)中所证明的那样。

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