首页> 外文期刊>Journal of electromyography and kinesiology: Official journal of the International Society of Electrophysiological Kinesiology >Analysis of phasic and tonic electromyographic signal characteristics: Electromyographic synthesis and comparison of novel morphological and linear-envelope approaches
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Analysis of phasic and tonic electromyographic signal characteristics: Electromyographic synthesis and comparison of novel morphological and linear-envelope approaches

机译:相位和张力肌电信号特征分析:肌电合成及新型形态学和线性包络方法的比较

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摘要

The pattern of tonic and phasic components in an EMG signal reflects the underlying behaviour of the central nervous system (CNS) in controlling the musculature. One avenue for gaining a better understanding of this behaviour is to seek a quantitative characterisation of these phasic and tonic components. We propose that these signal characteristics call range between unvarying, tonic and intermittent, phasic activation through a continuum of EMG amplitude modulation. In this paper, we present two new algorithms for quantifying amplitude modulation: a linear-envelope approach, and a mathematical morphology approach. In addition we present all algorithm for synthesising EMG signals with known amplitude modulation. The efficacy of the synthesis algorithm is demonstrated using real EMG data. We present an evaluation and comparison of the two algorithms for quantifying amplitude modulation based on synthetic data generated by the proposed synthesis algorithm. The results demonstrate that the EMG synthesis parameters represent 91.9% and 96.2% of the variance of linear-envelopes extracted from lumbo-pelvic muscle EMG signals collected from subjects performing a repetitive-movement task. This depended, however, on the muscle and movement-speed considered (F = 4.02, p < 0.001). Coefficients of determination between input and output amplitude modulation variables were used to quantify the accuracy of the linear-envelope and morphological signal processing algorithms. The linear-envelope algorithm exhibited higher coefficients of determination than the most accurate morphological approach (and hence greater accuracy, T = 8.16, p < 0.001). similarly, the standard deviation of the coefficients of determination was 1.691 times smaller (p < 0.001). This signal processing algorithm represents a novel tool for the quantification of amplitude modulation in continuous EMG signals and can be used in the study of CNS motor control of the Musculature in repetitive-movement tasks. (c) 2007 Elsevier Ltd. All rights reserved.
机译:EMG信号中的强直和相位成分的模式反映了中枢神经系统(CNS)在控制肌肉组织中的基本行为。更好地了解这种行为的一种途径是寻求这些相和补品成分的定量表征。我们提出,这些信号特性通过连续的EMG振幅调制在不可变的,强音的和间歇的,相位激活之间变化。在本文中,我们提出了两种用于量化调幅的新算法:线性包络法和数学形态学法。此外,我们介绍了用于合成具有已知幅度调制的EMG信号的所有算法。使用实际的EMG数据证明了合成算法的有效性。我们介绍了两种算法的评估和比较,这些算法基于提出的合成算法生成的合成数据来量化幅度调制。结果表明,EMG合成参数代表从执行重复运动任务的受试者收集的腰-骨盆肌EMG信号中提取的线性包络线变化的91.9%和96.2%。但是,这取决于所考虑的肌肉和运动速度(F = 4.02,p <0.001)。输入和输出幅度调制变量之间的确定系数用于量化线性包络和形态信号处理算法的准确性。线性包络算法比最精确的形态学方法显示出更高的确定系数(因此,准确性更高,T = 8.16,p <0.001)。同样,测定系数的标准偏差小1.691倍(p <0.001)。该信号处理算法代表了一种定量连续EMG信号中幅度调制的新颖工具,可用于研究重复运动任务中肌肉的CNS电机控制。 (c)2007 Elsevier Ltd.保留所有权利。

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