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Sensorimotor rhythm-based brain-computer interface (BCI): model order selection for autoregressive spectral analysis

机译:基于感觉运动节律的脑机接口(BCI):用于自回归光谱分析的模型顺序选择

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摘要

People can learn to control EEG features consisting of sensorimotor rhythm amplitudes and can use this control to move a cursor in one or two dimensions to a target on a screen. Cursor movement depends on the estimate of the amplitudes of sensorimotor rhythms. Autoregressive models are often used to provide these estimates. The order of the autoregressive model has varied widely among studies. Through analyses of both simulated and actual EEG data, the present study examines the effects of model order on sensorimotor rhythm measurements and BCI performance. The results show that resolution of lower frequency signals requires higher model orders; and that this requirement reflects the temporal span of the model coefficients. This is true for both simulated EEG data and actual EEG data during brain-computer interface (BCI) operation. Increasing model order and decimating the signal were similarly effective in increasing spectral resolution. Furthermore, for BCI control of two-dimensional cursor movement, higher model orders produced better performance in each dimension and greater independence between horizontal and vertical movements. In sum, these results show that autoregressive model order selection is an important determinant of BCI performance and should be based on criteria that reflect system performance.
机译:人们可以学习控制由感觉运动节律振幅组成的EEG功能,并可以使用此控件将光标在一维或二维上移动到屏幕上的目标。光标移动取决于感觉运动节律的幅度估计。自回归模型通常用于提供这些估计。在研究之间,自回归模型的顺序差异很大。通过对模拟和实际EEG数据的分析,本研究检查了模型顺序对感觉运动节律测量和BCI性能的影响。结果表明,较低频率信号的分辨率需要较高的模型阶数。并且该要求反映了模型系数的时间跨度。在脑机接口(BCI)操作期间,对于模拟的EEG数据和实际的EEG数据都是如此。增加模型阶数和抽取信号在增加频谱分辨率方面同样有效。此外,对于二维光标移动的BCI控制,较高的模型阶数在每个维度上产生更好的性能,并且在水平和垂直移动之间具有更大的独立性。总而言之,这些结果表明自回归模型顺序选择是BCI性能的重要决定因素,并且应基于反映系统性能的标准。

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