首页|Fractional generalization of entropy improves the characterization of rotors in simulated atrial fibrillation

Fractional generalization of entropy improves the characterization of rotors in simulated atrial fibrillation

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Atrial fibrillation (AF) underlies disordered spatiotemporal electrical activity, that increases in complexity with the persistence of the arrhythmia. It has been hypothesized that a specific arrhythmogenic mechanism, known as rotor, is the main driver sustaining the AF. Thus, the ablation of rotors has been suggested as a therapeutic strategy to terminate the arrhythmia. Nonetheless, such strategy poses a problem related with the characterization of the rotor propagating activity. This work addresses the rotor characterization by means of a fractional generalization of the entropy concept. By adopting complex order derivative operators, we endorse the definition of information content. The derived metric is used to study the AF propagation dynamics in computational models. The results evince that the fractional entropy approach yields a better spatio-temporal characterization of rotor dynamics than the conventional entropy analysis, under a wide range of simulated fibrillation conditions.(c) 2022 The Author(s). Published by Elsevier Inc. This is an open access article under the CC BY-NC-ND license ( http://creativecommons.org/licenses/by-nc-nd/4.0/ )

Atrial fibrillationRotorsElectrograms signal processingFractional entropyScientific computingELECTROGRAMSMECHANISMS

Ugarte, Juan P.、Tenreiro Machado, J. A.、Tobon, Catalina

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Univ San Buenaventura

Polytech Porto

Univ Medellin

2022

Applied mathematics and computation

Applied mathematics and computation

EISCI
ISSN:0096-3003
年,卷(期):2022.425
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