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Wavelet Entropy-Based Inter-subject Associative Cortical Source Localization for Sensorimotor BCI

机译:基于小波熵的感觉运动BCI受试者间联想皮层源定位

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摘要

We propose event-related cortical sources estimation from subject-independent electroencephalography (EEG) recordings for motor imagery brain computer interface (BCI). By using wavelet-based maximum entropy on the mean (wMEM), task-specific EEG channels are selected to predict right hand and right foot sensorimotor tasks, employing common spatial pattern (CSP) and regularized common spatial pattern (RCSP). EEG from five healthy individuals (Dataset IVa, BCI Competition III) were evaluated by a cross-subject paradigm. Prediction performance was evaluated via a two-layer feed-forward neural network, where the classifier was trained and tested by data from two subjects independently. On average, the overall mean prediction accuracies obtained using all 118 channels are (55.98±6.53) and (71.20±5.32) in cases of CSP and RCSP, respectively, which are slightly lower than the accuracies obtained using only the selected channels, i.e., (58.95±6.90) and (71.41±6.65), respectively. The highest mean prediction accuracy achieved for a specific subject pair by using selected EEG channels was on average (90.36±5.59) and outperformed that achieved by using all available channels (86.07 ± 10.71). Spatially projected cortical sources approximated using wMEM may be useful for capturing inter-subject associative sensorimotor brain dynamics and pave the way toward an enhanced subject-independent BCI.
机译:我们提出从独立于脑电图(EEG)记录运动图像脑计算机接口(BCI)的事件相关的皮质来源估计。通过使用基于小波的平均最大熵(wMEM),选择特定于任务的EEG通道,以利用公共空间模式(CSP)和规则化公共空间模式(RCSP)来预测右手和右脚的感觉运动任务。通过跨学科范式评估了来自五个健康个体(数据集IVa,BCI竞赛III)的脑电图。预测性能是通过两层前馈神经网络进行评估的,其中分类器由来自两个受试者的数据独立训练和测试。平均而言,在CSP和RCSP情况下,使用全部118个通道获得的总体平均预测准确度分别为(55.98±6.53)和(71.20±5.32),这比仅使用选定通道获得的精确度要低一些,即(58.95±6.90)和(71.41±6.65)。通过使用选定的EEG通道,对特定对象对实现的最高平均预测准确度平均为(90.36±5.59),超过了通过使用所有可用通道所达到的最高平均预测准确度(86.07±10.71)。使用wMEM近似估算的空间投影皮层源可能对捕获受试者之间的联想感觉运动脑动力学很有用,并为增强独立于受试者的BCI铺平了道路。

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