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Signal analysis of accelerometry data using gravity based modelling

机译:使用基于重力的建模对加速度计数据进行信号分析

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摘要

Triaxial accelerometers have been used to measure human movement parameters in swimming. Interpretation of data is difficult due to interference sources including interaction of external bodies. In this investigation the authors developed a model to simulate the physical movement of the lower back. Theoretical accelerometery outputs were derived thus giving an ideal, or noiseless dataset. An experimental data collection apparatus was developed by adapting a system to the aquatic environment for investigation of swimming. Model data was compared against recorded data and showed strong correlation. Comparison of recorded and modelled data can be used to identify changes in body movement, this is especially useful when cyclic patterns are present in the activity. Strong correlations between data sets allowed development of signal processing algorithms for swimming stroke analysis using first the pure noiseless data set which were then applied to performance data. Video analysis was also used to validate study results and has shown potential to provide acceptable results.
机译:三轴加速度计已用于测量游泳中的人体运动参数。由于干扰源(包括外部物体的相互作用),数据的解释很困​​难。在这项研究中,作者开发了一个模型来模拟下背部的身体运动。推算出理论加速度输出,从而给出了理想的或无噪声的数据集。通过将系统适配于水生环境以研究游泳,开发了实验数据收集装置。将模型数据与记录的数据进行比较,并显示出很强的相关性。记录数据和建模数据的比较可用于识别人体运动的变化,当活动中存在循环模式时,这尤其有用。数据集之间的强相关性允许开发泳动分析的信号处理算法,首先使用纯无噪声数据集,然后将其应用于性能数据。视频分析也用于验证研究结果,并显示出提供可接受结果的潜力。

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