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A new detection method for EMG activity monitoring

机译:一种新的EMG活动监测检测方法

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摘要

This paper introduces a new approach for electromyography (EMG) activity monitoring based on an improved version of the adaptive linear energy detector (ALED), a widely used technique in voice activity detection. More precisely, we propose a modified ALED technique (named M-ALED) to improve the method's robustness with respect to noise. To achieve this objective, M-ALED relies on the Teager-Kaiser operator for signal pre-conditioning to increase the SNR and uses the order statistics to gain robustness against the signal's impulsiveness. We propose again to exploit the order statistics for the initial signal baseline estimation to deal with the cases where such information is unavailable. Finally, since M-ALED detects the signal's activity at the frame level, we propose in a second stage to refine this detection (at the sample level) by using a constant false alarm rate (CFAR) approach leading to the fine M-ALED (FM-ALED) solution. The performance of FM-ALED is assessed via real and synthetic EMG signal recordings and the obtained results highlight its effectiveness as compared with the state-of-the-art methods (it reduces the mean error probability by a factor close to 2).
机译:本文介绍了一种基于改进版本的自适应线性能量检测器(ALED)的电拍摄(EMG)活动监测方法,是语音活动检测的广泛使用技术。更确切地说,我们提出了一种修改后的ALED技术(命名为M-Aled),以改善对噪声的鲁棒性。为了实现这一目标,M-Aled依赖于Teager-kaiser操作员进行信号预处理,以增加SNR,并使用订单统计来获得鲁棒性,以防止信号的冲动。我们再次提出利用初始信号基线估计的订单统计,以处理此类信息不可用的情况。最后,由于M-Aled检测到帧级别的信号的活动,因此我们在第二阶段提出通过使用导致精细M-Aled( FM-ALED)解决方案。通过实际和合成的EMG信号记录评估FM-Aled的性能,并且获得的结果与最先进的方法相比,它突出了其有效性(它将平均误差概率降低到接近2的因子。

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