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Gesture Decoding Using ECoG Signals from Human Sensorimotor Cortex: A Pilot Study

机译:使用来自人类感觉运动皮层的ECoG信号进行手势解码的初步研究

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摘要

Electrocorticography (ECoG) has been demonstrated as a promising neural signal source for developing brain-machine interfaces (BMIs). However, many concerns about the disadvantages brought by large craniotomy for implanting the ECoG grid limit the clinical translation of ECoG-based BMIs. In this study, we collected clinical ECoG signals from the sensorimotor cortex of three epileptic participants when they performed hand gestures. The ECoG power spectrum in hybrid frequency bands was extracted to build a synchronous real-time BMI system. High decoding accuracy of the three gestures was achieved in both offline analysis (85.7%, 84.5%, and 69.7%) and online tests (80% and 82%, tested on two participants only). We found that the decoding performance was maintained even with a subset of channels selected by a greedy algorithm. More importantly, these selected channels were mostly distributed along the central sulcus and clustered in the area of 3 interelectrode squares. Our findings of the reduced and clustered distribution of ECoG channels further supported the feasibility of clinically implementing the ECoG-based BMI system for the control of hand gestures.
机译:皮质脑电图(ECoG)已被证明是开发脑机接口(BMI)的有前途的神经信号源。但是,许多人担心大型颅骨切开术对植入ECoG网格带来的不利影响限制了基于ECoG的BMI的临床翻译。在这项研究中,我们从三个癫痫参与者的手势动作时从他们的感觉运动皮层收集了临床ECoG信号。提取混合频带中的ECoG功率谱,以构建同步实时BMI系统。在离线分析(85.7%,84.5%和69.7%)和在线测试(80%和82%,仅针对两个参与者进行测试)中都实现了三个手势的高解码精度。我们发现即使使用贪婪算法选择的信道子集也可以保持解码性能。更重要的是,这些选择的通道大部分沿着中央沟分布,并聚集在3个电极间正方形的区域中。我们对ECoG通道分布的减少和集群化的发现进一步支持了临床上实施基于ECoG的BMI系统来控制手势的可行性。

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