首页> 美国卫生研究院文献>Frontiers in Computational Neuroscience >Estimation of Neuromuscular Primitives from EEG Slow Cortical Potentials in Incomplete Spinal Cord Injury Individuals for a New Class of Brain-Machine Interfaces
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Estimation of Neuromuscular Primitives from EEG Slow Cortical Potentials in Incomplete Spinal Cord Injury Individuals for a New Class of Brain-Machine Interfaces

机译:从新型脑-机接口的不完全脊髓损伤个体的脑电图慢皮层电位的神经肌肉原始估计。

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摘要

One of the current challenges in human motor rehabilitation is the robust application of Brain-Machine Interfaces to assistive technologies such as powered lower limb exoskeletons. Reliable decoding of motor intentions and accurate timing of the robotic device actuation is fundamental to optimally enhance the patient's functional improvement. Several studies show that it may be possible to extract motor intentions from electroencephalographic (EEG) signals. These findings, although notable, suggests that current techniques are still far from being systematically applied to an accurate real-time control of rehabilitation or assistive devices. Here we propose the estimation of spinal primitives of multi-muscle control from EEG, using electromyography (EMG) dimensionality reduction as a solution to increase the robustness of the method. We successfully apply this methodology, both to healthy and incomplete spinal cord injury (SCI) patients, to identify muscle contraction during periodical knee extension from the EEG. We then introduce a novel performance metric, which accurately evaluates muscle primitive activations.
机译:人体运动康复中当前的挑战之一是脑机接口在辅助技术(如动力下肢外骨骼)中的强大应用。对运动意图的可靠解码和对机器人设备致动的准确计时是优化增强患者功能的基础。多项研究表明,可能有可能从脑电图(EEG)信号中提取运动意图。这些发现尽管引人注目,但表明,当前的技术仍远没有系统地应用于康复或辅助设备的准确实时控制。在这里,我们建议使用肌电图(EMG)降维作为增加该方法鲁棒性的解决方案,从EEG估算多肌控制的脊柱原始点。我们成功地将这种方法应用于健康和不完全脊髓损伤(SCI)患者,以从EEG进行定期膝关节伸展期间识别肌肉收缩。然后,我们介绍一种新颖的性能指标,该指标可以准确地评估肌肉原始激活。

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