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Multiplicative multi-fractal modeling of electromyography signals for discerning neuropathic conditions
Mehran Talebinejad1, Adrian D C Chan, Ali Miri
1Department of Electrical Engineering, McGill University, Canada. mehran.talebinejadmohammadi@mail.mcgill.ca
Abstract:
In this paper, we present a new method for multi-scale analysis of electromyography signals based on an interesting fractal process known as multiplicative cascade multi-fractal. Using simulated needle electromyography signals, we show this method provides a means for discrimination of normal and neuropathic electromyography signals. We also present experimental results that show the new parameters, computed using multiplicative cascade multi-fractal modeling, are more robust than the conventional signal parameter, number of turns, in the presence of additive noise. Results of multiplicative cascade multi-fractal modeling are consistent with other multi-scale approaches; advantages and differences are high lighted.
