Atrial fibrillation episode patterns as predictor of clinical outcome of catheter ablation

Author:

Saiz-Vivó JavierORCID,Corino Valentina D. A.,Martín-Yebra Alba,Mainardi Luca T.,Hatala Robert,Sörnmo Leif

Abstract

AbstractMethods for characterization of atrial fibrillation (AF) episode patterns have been introduced without establishing clinical significance. This study investigates, for the first time, whether post-ablation recurrence of AF can be predicted by evaluating episode patterns. The dataset comprises of 54 patients (age 56 ± 11 years; 67% men), with an implantable cardiac monitor, before undergoing the first AF catheter ablation. Two parameters of the alternating bivariate Hawkes model were used to characterize the pattern: AF dominance during the monitoring period (log(mu)) and temporal aggregation of episodes (beta1). Moreover, AF burden and AF density, a parameter characterizing aggregation of AF burden, were studied. The four parameters were computed from an average of 29 AF episodes before ablation. The risk of AF recurrence after catheter ablation using the Hawkes parameters log(mu) and beta1, AF burden, and AF density was evaluated. While the combination of AF burden and AF density is related to a non-significant hazard ratio, the combination of log(mu) and beta1 is related to a hazard ratio of 1.95 (1.03–3.70; p < 0.05). The Hawkes parameters showed increased risk of AF recurrence within 1 year after the procedure for patients with high AF dominance and high episode aggregation and may be used for pre-ablation risk assessment. Graphical Abstract

Funder

Horizon 2020

Juan de la Cierva

MICINN and FEDER

Publisher

Springer Science and Business Media LLC

Subject

Computer Science Applications,Biomedical Engineering

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Characterization of Atrial Fibrillation Episode Patterns: A Comparative Study;IEEE Transactions on Biomedical Engineering;2024-01

2. Sixty years in service to international biomedical engineering community;Medical & Biological Engineering & Computing;2023-12

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