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Model-Based Control of FES Embedding Simultaneous Volitional EMG Measurement

机译:基于模型的FES嵌入同时意志EMG测量的控制

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There are over one million people in the UK with upper limb impairment following stroke. Artificial activation of muscle can be achieved using functional electrical stimulation (FES), and enable recovery by facilitating task practice. Signicant clinical research supports the utility of FES for both orthotic and therapeutic purposes, and shows that the effectiveness is maximised when applied concurrently with a patient's voluntary effort. Voluntary effort can be captured using electromyography (EMG), however existing FES control schemes using EMG are predominantly open-loop and fail to provide accurate assistance. In this paper, a model of the dynamic interaction between voluntary and evoked muscle activation is developed, embedding both nonlinear recruitment and activation dynamics. Then an identification method is proposed suitable for clinical application. This enables a model-based, hybrid EMG/FES control scheme to be developed, allowing the dual objectives of tracking and volitional intention support to be optimized for the first time. Experimental results show that the tracking performance of the controller is far more effective compared to previous FES approaches which neglect voluntary action.
机译:英国有超过100万人,中风后肢体损伤。可以使用功能电刺激(FE)来实现肌肉的人工激活,并通过促进任务练习来实现恢复。签名人临床研究支持FES对矫形和治疗目的的实用性,并表明,在与患者自愿努力同时应用时,有效性最大化。可以使用肌电图(EMG)捕获自愿努力,但使用EMG的现有FES控制方案主要是开环,并且无法提供准确的帮助。在本文中,开发了一种自愿和诱发肌肉激活之间的动态相互作用的模型,嵌入了非线性招生和激活动力学。然后提出鉴定方法,适用于临床应用。这使得能够开发基于模型的混合EMG / FES控制方案,允许首次优化跟踪和激动意图支持的双重目标。实验结果表明,与忽视自愿行动的先前FES方法相比,控制器的跟踪性能远远有效。

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