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Entropy Analysis of Electrocardiography and Heart Rate Variability in Heart Failure: A Methodology-Oriented Narrative Review and Illustrative Evidence Map

Submitted:

21 September 2026

Posted:

21 September 2026

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Abstract
Entropy measures characterize complex dynamics in electrocardiography (ECG) and heart rate variability (HRV), but their interpretation depends on estimator, signal representation, and analytical configuration. This methodology-oriented narrative review organized 126 references by evidentiary function and applied role-appropriate interpretation boundaries. Within this evidence set, 53 human heart-failure (HF) or HF-relevant reports underwent structured mapping by method family (template, multiscale, symbolic/distributional, spectral/wavelet, or conditional/coupling), research task, data provenance, and validation design. Findings varied with configuration, rhythm, preprocessing, and recording length, while reused datasets or shared cohorts limited the independence of report-level evidence. Of 12 reports presenting diagnostic/classification performance, only two reported participant-separated internal evaluation, without establishing a fully nested leakage-free pipeline. A non-exclusive set of 10 reports examined clinical outcomes or clinically relevant event associations, all within single cohorts. Neither subset included independent external patient-cohort validation or identified calibration. Entropy should therefore be treated as a configuration-, representation-, rhythm-, and task-specific research tool for dynamic phenotyping or a candidate component of multivariable models, rather than a standalone clinical measure. Progress requires complete estimator reporting and design-appropriate participant separation; candidates intended for prediction or decision support additionally require appropriate comparators, external validation, calibration, and decision-relevant evaluation.
Keywords: 
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Subject: 
Engineering  -   Bioengineering
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