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A Novel Algorithm for EMG Signal Processing and Muscle Timing Measurement

机译:一种新的肌电信号处理和肌肉定时测量算法

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This paper presents a new method for the automated processing of surface electromyography (SEMG) signals, particularly suited for the detection of muscle activation timing. The method has an intermediate level of complexity between simpler (but less performing) and more complex (but in general slower) methods, and is successfully used in the development of biomedical devices for rehabilitation carried out by our group. The method proposed here is based on a statistical approach for threshold computation that is implemented without the need of maximum voluntary contraction or relaxed state, usually required to overcome the difficulty in obtaining the threshold value. The method is compared with 10 popular automated standard methods using different types of simulated signals that approximate the behavior of real SEMG signals. Both the number of activations detected and the onset time measured are analyzed. The algorithm is then applied to real SEMG signals acquired from healthy subjects. The results are finally compared with the literature values. The results show that the proposed algorithm is the best performing method when both the number of activations and the activation timing are considered. In real applications, the algorithm gives the results compatible with the well-agreed literature data.
机译:本文提出了一种自动处理表面肌电图(SEMG)信号的新方法,特别适用于检测肌肉激活时机。该方法在较简单(但性能较差)和较复杂(但通常较慢)之间处于中等复杂性水平,已成功用于我们小组进行康复的生物医学设备的开发中。这里提出的方法基于用于阈值计算的统计方法,该方法不需要最大的自愿收缩或松弛状态即可实现,通常需要克服最大的收缩或松弛状态来获得阈值的困难。该方法与10种流行的自动化标准方法进行了比较,这些方法使用不同类型的模拟信号来近似实际SEMG信号的行为。分析检测到的激活次数和测量的起效时间。然后将该算法应用于从健康受试者获取的真实SEMG信号。最后将结果与文献值进行比较。结果表明,在同时考虑激活次数和激活时间的情况下,该算法是性能最好的算法。在实际应用中,该算法给出的结果与公认的文献数据兼容。

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