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March 8, 2017IEEE Transactions on Biomedical Engineering324 citationsOpen Access

Refined Composite Multiscale Dispersion Entropy and its Application to Biomedical Signals

HAHamed AzamiMRMostafa RostaghiDADaniel Abásolo

Structured PICO

P
Population
Synthetic signals and three biomedical datasets
I
Intervention
Multiscale dispersion entropy (MDE) and refined composite MDE (RCMDE)
C
Comparator
Multiscale entropy (MSE) and refined composite MSE (RCMSE)
O
Outcome
Stability, computational speed, and discrimination of physiological signals

The proposed MDE and RCMDE methods provide faster, more stable, and more discriminative complexity analysis for physiological signals compared to traditional multiscale entropy.

Abstract

OBJECTIVE: We propose a novel complexity measure to overcome the deficiencies of the widespread and powerful multiscale entropy (MSE), including, MSE values may be undefined for short signals, and MSE is slow for real-time applications. METHODS: ) for sample entropy used in MSE. We also propose the refined composite MDE (RCMDE) to improve the stability of MDE. RESULTS: We evaluate MDE, RCMDE, and refined composite MSE (RCMSE) on synthetic signals and three biomedical datasets. The MDE, RCMDE, and RCMSE methods show similar results, although the MDE and RCMDE are faster, lead to more stable results, and discriminate different types of physiological signals better than MSE and RCMSE. CONCLUSION: For noisy short and long time series, MDE and RCMDE are noticeably more stable than MSE and RCMSE, respectively. For short signals, MDE and RCMDE, unlike MSE and RCMSE, do not lead to undefined values. The proposed MDE and RCMDE are significantly faster than MSE and RCMSE, especially for long signals, and lead to larger differences between physiological conditions known to alter the complexity of the physiological recordings. SIGNIFICANCE: MDE and RCMDE are expected to be useful for the analysis of physiological signals thanks to their ability to distinguish different types of dynamics. The MATLAB codes used in this paper are freely available at http://dx.doi.org/10.7488/ds/1982.

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Cite This Study

Azami et al. (2017) studied this question.

synapsesocial.com/papers/6a0373bcc24a02571486cfd2https://doi.org/10.1109/tbme.2017.2679136
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