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Enhanced Single Channel SSVEP Detection Method on Benchmark Dataset

机译:基准数据集的增强型单通道SSVEP检测方法

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Steady state visual evoked potential (SSVEP) is a brain response that allows a practical and high-performance brain-computer interface (BCI) to be designed. SSVEP response is a near sinusoidal waveform at a visual stimulus frequency and is time-locked to stimulus onset. This paper presents a new single channel SSVEP detection method that takes advantage of the behaviour of SSVEP response. The proposed method defines subject-specific sinusoids at the training stage. Detection of a target stimulus frequency is achieved by a correlation value between the electroencephalography (EEG) signal and subject specific sinusoids at the test stage. The performance of the developed method was compared with the well-known power spectral density analysis (PSDA) on a benchmark dataset. Experimental results show that the developed method significantly improves the SSVEP detection accuracy (by about 23%) as well as the information transfer rate (ITR) compared to PSDA methods.
机译:稳态视觉诱发电位(SSVEP)是一种大脑反应,可以设计实用且高性能的脑机接口(BCI)。 SSVEP响应在视觉刺激频率下是接近正弦波形,并被锁定到刺激发作的时间。本文提出了一种新的单通道SSVEP检测方法,该方法利用了SSVEP响应的行为。所提出的方法在训练阶段定义了特定于受试者的正弦曲线。在测试阶段,通过脑电图(EEG)信号与受试者特定正弦曲线之间的相关值可以实现目标刺激频率的检测。在基准数据集上,将开发的方法的性能与众所周知的功率谱密度分析(PSDA)进行了比较。实验结果表明,与PSDA方法相比,该方法显着提高了SSVEP检测精度(约23%)以及信息传输率(ITR)。

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