An Adaptive Filtering Method for Surface EMG Signals Based on Source Number Estimation
A technology of adaptive filtering and electromyographic signal, applied in the direction of adaptive network, electrical components, impedance network, etc.
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[0017] Mark the surface electromyography signal collected under the continuous steady-state constant force contraction of the muscle as x(t), and use it as the signal object to be analyzed, and perform the collective empirical mode decomposition processing. The specific steps are as follows:
[0018] The first step is to count the standard deviation of the original surface EMG signal x(t) and mark it as SD, add α×SD additive random white noise to x(t), and mark the obtained new time series as
[0019] In the second step, the new sequence Perform empirical mode decomposition to obtain the intrinsic mode function components of the noised sequence;
[0020] In the third step, repeat the previous two steps m times to obtain a new time series after adding different white noises And m intrinsic modal function component sets can be obtained;
[0021] In the fourth step, the obtained intrinsic mode function component set is averaged to obtain the final intrinsic mode function co...
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