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Trunk posture monitoring with inertial sensors

机译:带有惯性传感器的行李箱姿势监控

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Measurement of human posture and movement is an important area of research in the bioengineering and rehabilitation fields. Various attempts have been initiated for different clinical application goals, such as diagnosis of pathological posture and movements, assessment of pre- and post-treatment efficacy and comparison of different treatment protocols. Image-based methods for measurements of human posture and movements have been developed, such as the radiography, photogrammetry, optoelectric technique and video analysis. However, it is found that these methods are complicated to set up, time-consuming to operate and could only be applied in laboratory environments. This study introduced a method of using a posture monitoring system in estimating the spinal curvature changes during trunk movements on the sagittal and coronal planes and providing trunk posture monitoring during daily activities. The system consisted of three sensor modules, each with one tri-axial accelerometer and three uni-axial gyroscopes orthogonally aligned, and a digital data acquisition and feedback system. The accuracy of this system was tested with a motion analysis system (Vicon 370) in calibration with experimental setup and in trunk posture measurement with nine human subjects, and the performance of the posture monitoring system during daily activities with two human subjects was reported. The averaged root mean squared differences between the measurements of the system and motion analysis system were found to be <1.5° in dynamic calibration, and <3.1° for the sagittal plane and ≤2.1° for the coronal plane in estimation of the trunk posture change during trunk movements. The measurements of the system and the motion analysis system was highly correlated (>0.999 for dynamic calibration and >0.829 for estimation of spinal curvature change in domain planes of movement during flexion and lateral bending). With the sensing modules located on the upper trunk, mid-trunk and the pelvic levels, the inclination of trunk segment and the change of spinal curvature in trunk movements could be estimated. The posture information of five subjects was recorded at 30 s intervals during daily activity over a period of 3 days and 2 h a day. The preliminary results demonstrated that the subjects could improve their posture when feedback signals were provided. The posture monitoring system could be used for the purpose of posture monitoring during daily activity.
机译:人体姿势和运动的测量是生物工程和康复领域的重要研究领域。已经针对不同的临床应用目标进行了各种尝试,例如病理姿势和运动的诊断,治疗前后疗效的评估以及不同治疗方案的比较。已经开发出了基于图像的人体姿势和运动测量方法,例如射线照相,摄影测量,光电技术和视频分析。但是,发现这些方法的设置复杂,操作耗时并且只能在实验室环境中使用。这项研究介绍了一种使用姿势监测系统估算躯干在矢状和冠状面上运动过程中脊柱曲率变化并在日常活动中提供躯干姿势监测的方法。该系统由三个传感器模块组成,每个模块都带有一个正交对准的三轴加速度计和三个单轴陀螺仪,以及一个数字数据采集和反馈系统。使用运动分析系统(Vicon 370)测试了该系统的准确性,并通过实验设置进行了校准,并与9位人体受试者进行了躯干姿势测量,并报告了2位人体受试者在日常活动中姿势监测系统的性能。在动态校准中,系统和运动分析系统的测量值之间的平均均方根差被发现为<1.5°,矢状面<3.1°,冠状面≤2.1°,以估计躯干姿势变化在躯干运动中。系统和运动分析系统的测量值高度相关(对于动态校准,> 0.999;对于在弯曲和横向弯曲过程中运动域平面中的脊柱曲率变化,> 0.829)。借助位于躯干上部,中躯干和骨盆水平的传感模块,可以估算躯干节段的倾斜度和躯干运动中脊柱弯曲的变化。在每天的活动中,每天3天和每天2小时,以30 s的间隔记录5位受试者的姿势信息。初步结果表明,当提供反馈信号时,受试者可以改善其姿势。姿势监测系统可以用于日常活动期间的姿势监测。

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