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首页> 外文期刊>Progress in brain research >Brain-computer interface signal processing at the Wadsworth Center: mu and sensorimotor beta rhythms.
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Brain-computer interface signal processing at the Wadsworth Center: mu and sensorimotor beta rhythms.

机译:沃兹沃思中心的脑机接口信号处理:亩和感觉运动性β节律。

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The Wadsworth brain-computer interface (BCI), based on mu and beta sensorimotor rhythms, uses one- and two-dimensional cursor movement tasks and relies on user training. This is a real-time closed-loop system. Signal processing consists of channel selection, spatial filtering, and spectral analysis. Feature translation uses a regression approach and normalization. Adaptation occurs at several points in this process on the basis of different criteria and methods. It can use either feedforward (e.g., estimating the signal mean for normalization) or feedback control (e.g., estimating feature weights for the prediction equation). We view this process as the interaction between a dynamic user and a dynamic system that coadapt over time. Understanding the dynamics of this interaction and optimizing its performance represent a major challenge for BCI research.
机译:基于mu和beta感觉运动节律的Wadsworth脑计算机接口(BCI)使用一维和二维光标移动任务,并依赖于用户培训。这是一个实时的闭环系统。信号处理包括通道选择,空间滤波和频谱分析。特征转换使用回归方法和标准化。在此过程中,根据不同的标准和方法,适应会发生在几个点上。它可以使用前馈(例如,估算信号均值以进行归一化)或使用反馈控制(例如,估算预测方程式的特征权重)。我们将此过程视为动态用户和动态系统之间随着时间推移而相互适应的交互。理解这种相互作用的动力学并优化其性能是BCI研究的主要挑战。

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