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Adaptive BCI based on variational Bayesian Kalman filtering: an empirical evaluation

机译:基于变形贝叶斯卡尔曼滤波的自适应BCI:实证评价

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This paper proposes the use of variational Kalman filtering as an inference technique for adaptive classification in a brain computer interface (BCI). The proposed algorithm translates electroencephalogram segments adaptively into probabilities of cognitive states. It, thus, allows for nonstationarities in the joint process over cognitive state and generated EEG which may occur during a consecutive number of trials. Nonstationarities may have technical reasons (e.g., changes in impedance between scalp and electrodes) or be caused by learning effects in subjects. We compare the performance of the proposed method against an equivalent static classifier by estimating the generalization accuracy and the bit rate of the BCI. Using data from two studies with healthy subjects, we conclude that adaptive classification significantly improves BCI performance. Averaging over all subjects that participated in the respective study, we obtain, depending on the cognitive task pairing, an increase both in generalization accuracy and bit rate of up to 8%. We may, thus, conclude that adaptive inference can play a significant contribution in the quest of increasing bit rates and robustness of current BCI technology. This is especially true since the proposed algorithm can be applied in real time.
机译:本文提出使用变分Kalman滤波作为脑电脑界面(BCI)中自适应分类的推理技术。所提出的算法适用于认知状态的概率转换脑电图段。因此,它允许在认知状态和产生的脑电图中的关节过程中的非间转性,并且在连续的试验期间可能发生的脑电图。非间抗可能具有技术原因(例如,头皮和电极之间阻抗的变化)或由受试者中的学习效果引起。通过估计BCI的泛化精度和比特率,我们通过估计BCI的概率来比较所提出的方法对等效静态分类器的性能。使用来自两项研究的数据与健康受试者,我们得出结论,自适应分类显着提高了BCI性能。根据认知任务配对,我们获得参与各自研究的所有科目,这在泛化准确度和比特率高达8%的情况下获得。因此,我们可以得出结论,自适应推断可以在寻求增加的比特率和当前BCI技术的鲁棒性方面发挥重大贡献。这尤其如此,因为所提出的算法可以实时应用。

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