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Sampled Sinusoidal Stimulation Profile and Multichannel Fuzzy Logic Classification for Monitor-based Phase-coded SSVEP Brain-Computer Interfacing

机译:基于监视器的相位编码SSVEP脑计算机接口的采样正弦激励曲线和多通道模糊逻辑分类

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摘要

Objective. The performance and usability of brain–computer interfaces (BCIs) can be improved by new paradigms, stimulation methods, decoding strategies, sensor technology etc. In this study we introduce new stimulation and decoding methods for electroencephalogram (EEG)-based BCIs that have targets flickering at the same frequency but with different phases. Approach. The phase information is estimated from the EEG data, and used for target command decoding. All visual stimulation is done on a conventional (60-Hz) LCD screen. Instead of the 'on/off' visual stimulation, commonly used in phase-coded BCI, we propose one based on a sampled sinusoidal intensity profile. In order to fully exploit the circular nature of the evoked phase response, we introduce a filter feature selection procedure based on circular statistics and propose a fuzzy logic classifier designed to cope with circular information from multiple channels jointly. Main results. We show that the proposed visual stimulation enables us not only to encode more commands under the same conditions, but also to obtain EEG responses with a more stable phase. We also demonstrate that the proposed decoding approach outperforms existing ones, especially for the short time windows used. Significance. The work presented here shows how to overcome some of the limitations of screen-based visual stimulation. The superiority of the proposed decoding approach demonstrates the importance of preserving the circularity of the data during the decoding stage.
机译:目的。可以通过新的范例,刺激方法,解码策略,传感器技术等来改善脑机接口(BCI)的性能和可用性。在本研究中,我们介绍基于脑电图(EEG)的BCI的新刺激和解码方法以相同的频率闪烁,但相位不同。方法。从EEG数据估计相位信息,并将其用于目标命令解码。所有的视觉刺激都是在常规的(60 Hz)LCD屏幕上完成的。代替通常在相位编码BCI中使用的“开/关”视觉刺激,我们提出了一种基于采样正弦强度分布的刺激。为了充分利用诱发相位响应的循环特性,我们引入了一种基于循环统计的滤波器特征选择程序,并提出了一种模糊逻辑分类器,旨在共同处理来自多个通道的循环信息。主要结果。我们表明,提出的视觉刺激不仅使我们能够在相同条件下编码更多命令,而且还能获得具有更稳定相位的EEG响应。我们还证明了所提出的解码方法优于现有的解码方法,尤其是对于所使用的短时间窗口而言。意义。本文介绍的工作展示了如何克服基于屏幕的视觉刺激的某些限制。所提出的解码方法的优越性证明了在解码阶段保持数据圆度的重要性。

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