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A SNR-independent formulation of a double threshold algorithm for the estimation of muscle activation intervals

机译:双阈值算法的与信噪比无关的公式,用于估计肌肉激活间隔

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The aim of this work is to propose an improvement to the double threshold algorithm for muscular activation intervals estimation developed by Bonato and his co-workers. The proposed method has been designed in order to be adaptive also when the Signal to Noise ratio (SNR) of the sEMG signal changes during the trial, by re-evaluating the parameters of the algorithm according to the estimated local SNR and the desired detection and false alarm probabilities. This novel implementation is also suitable for working in pseudo real-time since it can give information on burst estimation shortly after the end of the current muscular activity. The proposed method was tested on simulated signals taking into account changes in the SNR during the trial, and results were compared with those obtained with the classical implementation of the algorithm.
机译:这项工作的目的是提出对Bonato及其同事开发的用于肌肉激活间隔估计的双阈值算法的改进。通过根据估计的局部SNR和所需的检测方法重新评估算法的参数,设计了提出的方法,以便在试验期间sEMG信号的信噪比(SNR)发生变化时也具有适应性。错误警报概率。这种新颖的实现方式还适合于伪实时工作,因为它可以在当前肌肉活动结束后不久就提供有关突发估计的信息。在试验过程中考虑了SNR的变化,对模拟信号进行了测试,并将结果与​​经典算法实现的结果进行了比较。

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