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Application of singular spectrum analysis to the smoothing of raw kinematic signals

机译:奇异频谱分析在原始运动学信号平滑中的应用

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摘要

Motion capture systems currently used in biomechanical analysis introduce systematic measurement errors that appear in the form of noise in recorded displacement signals. The noise is unacceptably amplified when differentiating displacements to obtain velocities and accelerations. To avoid this phenomenon, it is necessary to smooth the displacement signal prior to differentiation in order to eliminate the noise introduced by the experimental system. The use of singular spectrum analysis (SSA) is presented in this paper as an alternative to traditional digital filtering methods. SSA is a novel non-parametric technique based on principles of multivariate statistics. The original time series is decomposed into a number of additive time series, each of which can be easily identified as being part of the modulated signal, or as being part of the random noise. Several examples that demonstrate the superiority of this technique over other methods used in biomechanical analysis are presented in this paper. (c) 2004 Elsevier Ltd. All rights reserved.
机译:当前在生物力学分析中使用的运动捕捉系统引入了系统的测量误差,这些误差以噪声的形式出现在记录的位移信号中。当微分位移以获得速度和加速度时,噪声被放大到无法接受的程度。为了避免这种现象,有必要在微分之前对位移信号进行平滑处理,以消除实验系统引入的噪声。本文介绍了奇异频谱分析(SSA)的使用,以替代传统的数字滤波方法。 SSA是一种基于多元统计原理的新颖的非参数技术。原始时间序列被分解为多个加性时间序列,每个时间序列都可以轻松识别为调制信号的一部分,还是随机噪声的一部分。本文介绍了一些实例,这些实例证明了该技术相对于生物力学分析中使用的其他方法的优越性。 (c)2004 Elsevier Ltd.保留所有权利。

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