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User performance evaluation and real-time guidance in cloud-based physical therapy monitoring and guidance system

机译:基于云的物理治疗监测和指导系统中的用户性能评估和实时指导

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The effectiveness of traditional physical therapy may be limited by the sparsity of time a patient can spend with the physical therapist (PT) and the inherent difficulty of self-training given the paper/figure/video instructions provided to the patient with no way to monitor and ensure compliance with the instructions. In this paper, we propose a cloud-based physical therapy monitoring and guidance system. It is able to record the actions of the PT as he/she demonstrates a task to the patient in an offline session, and render the PT as an avatar. The patient can later train himself by following the PT avatar and getting real-time guidance on his/her device. Since the PT and user (patient) motion sequences may be misaligned due to human reaction and network delays, we propose a Gesture-Based Dynamic Time Warping algorithm that can segment the user motion sequence into gestures, and align and evaluate the gesture sub-sequences, all in real time. We develop an evaluation model to quantify user performance based on different criteria provided by the PT for a task, trained with offline subjective test data consisting of user performance and physical therapist scores. Moreover, we design three types of guidance which can be provided after each gesture based on user score, and conduct subjective tests to validate their effectiveness. Experiments with multiple subjects show that the proposed system can effectively train patients, give accurate evaluation scores, and provide real-time guidance which helps the patients learn the tasks and reach the satisfactory score with less time.
机译:传统的物理疗法的有效性可能会受到患者与物理治疗师(PT)花费的时间稀疏以及给患者提供纸质,图形/视频说明而无法监控的自我培训固有的困难的限制并确保遵守说明。在本文中,我们提出了一种基于云的物理治疗监测和指导系统。当他/她在离线会话中向患者演示任务时,它能够记录PT的动作,并将PT呈现​​为化身。患者随后可以通过跟随PT头像进行训练,并在其设备上获得实时指导。由于PT和用户(患者)运动序列可能由于人的反应和网络延迟而未对齐,因此我们提出了一种基于手势的动态时间规整算法,该算法可以将用户运动序列细分为手势,并对齐和评估手势子序列,全部实时。我们开发了一种评估模型,用于根据PT为任务提供的不同标准来量化用户表现,并使用包含用户表现和物理治疗师评分的离线主观测试数据进行训练。此外,我们设计了三种类型的指导,可以根据用户得分在每个手势之后提供这些指导,并进行主观测试以验证其有效性。多学科实验表明,该系统可以有效地训练患者,给出准确的评估分数,并提供实时指导,帮助患者学习任务,并以较少的时间达到满意的分数。

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