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Real-time Virtual Coach using LSTM for Assisting Physical Therapists with End-effector-based Robot-assisted Gait Training

机译:使用LSTM使用LSTM进行实时虚拟教练,以协助物理治疗师与基于终结器的机器人辅助步态培训

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With the development of robotic technology, the demand for state-of-the-art technology in the field of rehabilitation is rapidly increasing for the elderly and people with disabilities. In this paper, we propose a real-time virtual coach to assist physical therapists with the end-effector-based robot-assisted gait training for stroke survivors using Long Short-Term Memory (LSTM) networks. Our proposed virtual coach consists of the sensor module for data gathering and dataset generation, real-time classification of the pathologic patient gait during the training using LSTM networks, and delivery of the coaching recommendations in an audiovisual form. Our preliminary study determined the selection of coaching recommendations. LSTM networks are trained to provide the selected coaching recommendations. The performance of the proposed virtual coach is verified using classification simulation of an able-bodied person on the rehabilitation robot, G-EO System. The usability was verified through a satisfaction survey of five professional physical therapists.
机译:随着机器人技术的发展,对康复领域的最先进技术的需求正在为老年人和残疾人迅速增加。在本文中,我们提出了一个实时虚拟教练,以帮助物理治疗师使用长短期存储器(LSTM)网络的中风幸存者的终结器的机器人辅助步态训练。我们所提出的虚拟教练包括用于数据收集和数据集的传感器模块,使用LSTM网络进行培训期间病理患者步态的实时分类,并以视听形式提供教练建议。我们的初步研究确定了教练建议的选择。 LSTM网络培训以提供所选的教练建议。使用能够在康复机器人,G-EO系统上的能够体验的人的分类模拟来验证所提出的虚拟教练的性能。通过对五个专业物理治疗师的满意调查验证了可用性。

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