Publication | Open Access
Efficient Methods for Calculating Sample Entropy in Time Series Data Analysis
20
Citations
12
References
2018
Year
Sample EntropyNeuropsychologyEngineeringElectroencephalographySocial SciencesElectrophysiological EvaluationData ScienceSe CalculationEfficient MethodsNeurologyCognitive NeuroscienceStatisticsNonlinear Time SeriesNeuroimagingForecastingHeart Rate VariabilityFunctional Data AnalysisNeurophysiologyEntropyEntropy ProductionEeg Signal ProcessingElectrophysiologyNeuroscienceBraincomputer Interface
Recently, different algorithms have been suggested to improve Sample Entropy (SE) performance. Although new methods for calculating SE have been proposed, so far improving the efficiency (computational time) of SE calculation methods has not been considered. This research shows such an analysis of calculating a correlation between Electroencephalogram (EEG) and Heart Rate Variability (HRV) based on their SE values. Our results indicate that the parsimonious outcome of SE calculation can be achieved by exploiting a new method of SE implementation. In addition, it is found that the electrical activity in the frontal lobe of the brain appears to be correlated with the HRV in a time domain.
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