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Analysis of Joints for Tracking Fitness and Monitoring Progress in Physiotherapy

机译:关节的追踪分析以及理疗监测进度

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This paper proposes a framework to track the progress in angles and range of motion of joints in physiotherapy. Using a sensor, the 3D skeletal information of a subject undergoing the therapy is extracted. Using time-frequency features of the skeletal profile based on the approximation coefficients of the Discrete Wavelet Transform (DWT), the exercise the subject is engaged in is identified by a recurrent neural network in conjunction with long-and-short term memory. Subsequently, each instance of the exercise is segmented. The best of these is used as a reference and various instances of the exercise are compared against the reference for repeatability, fidelity, etc., to study muscle and/ or joint fatigue and progress. Finally, Joint performance analysis is carried out using metrics evaluated at the end of each engaging session. Experimental results demonstrate that with such progressive analysis, it is possible to quantify the performance through the course of the regimen.
机译:本文提出了一个框架,用于追踪理疗中关节的角度和运动范围的进展。使用传感器,提取正在接受治疗的受试者的3D骨骼信息。基于离散小波变换(DWT)的近似系数,使用骨骼轮廓的时频特征,通过递归神经网络结合长期和短期记忆来识别对象从事的锻炼。随后,对练习的每个实例进行了细分。这些中的最好者用作参考,并且将锻炼的各种情况与参考的可重复性,保真度等进行比较,以研究肌肉和/或关节的疲劳和进展。最后,使用每次参与会议结束时评估的指标进行联合绩效分析。实验结果表明,通过这种渐进式分析,可以在治疗过程中量化治疗效果。

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