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Simplified Optimal Estimation of Time-Varying Electromyogram Standard Deviation (EMGσ): Evaluation on Two Datasets

机译:简化了时变电灰度标准偏差的最佳估计(EMGΣ):两个数据集的评估

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摘要

To facilitate the broader use of EMG signal whitening, we studied four whitening procedures of various complexities, as well as the roles of sampling rate and noise correction. We separately analyzed force-varying and constant-force contractions from 64 subjects who completed constant-posture tasks about the elbow over a range of forces from 0% to 50% maximum voluntary contraction (MVC). From the constant-force tasks, we found that noise correction via the root difference of squares (RDS) method consistently reduced EMG recording noise, often by a factor of 5–10. All other primary results were from the force-varying contractions. Sampling at 4096 Hz provided small and statistically significant improvements over sampling at 2048 Hz (~3%), which, in turn, provided small improvements over sampling at 1024 Hz (~4%). In comparing equivalent processing variants at a sampling rate of 4096 Hz, whitening filters calibrated to the EMG spectrum of each subject generally performed best (4.74% MVC EMG-force error), followed by one universal whitening filter for all subjects (4.83% MVC error), followed by a high-pass filter whitening method (4.89% MVC error) and then a first difference whitening filter (4.91% MVC error)—but none of these statistically differed. Each did significantly improve from EMG-force error without whitening (5.55% MVC). The first difference is an excellent whitening option over this range of contraction forces since no calibration or algorithm decisions are required.
机译:为了方便更广泛地使用EMG信号美白,我们研究了各种复杂四个美白程序,以及采样率和噪声校正的作用。我们分开64个科目谁完成对肘部的范围内部队从0%至50%的最大随意收缩(MVC)定姿势任务分析力变和恒力收缩。从恒定力的任务,我们通过平方根差发现噪声校正(RDS)方法始终如一地降低EMG噪声记录,通常由5-10的一个因素。所有其他主要结果是从力变收缩。在4096个赫兹提供小型和统计学显著改进过在2048赫兹(〜3%),这反过来,用在1024赫兹(〜4%)的采样提供小的改进采样采样。在比较等效处理在4096赫兹的采样率变体,校准到每位受试者的EMG频谱白化滤波器通常进行最好的(4.74%MVC EMG-力误差),随后对所有受试者一个普遍白化滤波器(4.83%MVC误差),接着是高通滤波器的白化方法(4.89%MVC误差),然后第一差白化滤波器(4.91%MVC误差) - 丁没有这些统计学差异。每个都显著从EMG-力误差不提高美白(5.55%MVC)。第一个区别是在这个范围内收缩力的一个很好的美白选择,因为不需要校准或算法决定。

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