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New research · AI in Medicine
JACC. Advances · 1d
AI / informaticsJACC. Advances · 2026

AI-ECG Risk Stratification for Atrial Fibrillation: Real-World Performance and Explainability.

Kouki Matsuo, Yoshihiro Sobue, Taiji Miyake … Hideo Izawa
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AI in MedicineAI / informatics

AI-ECG alone shows modest ability to identify atrial fibrillation risk.

AI-ECG Risk Stratification for Atrial Fibrillation: Real-World Performance and Explainability.

Kouki Matsuo et al. · JACC. Advances · 2026
Background

Artificial intelligence-enabled electrocardiography (AI-ECG) has emerged as a potential method for identifying atrial fibrillation (AF) from sinus rhythm.

Purpose

The objective of the study was to assess the performance and explainability of an AI-integrated ECG system for AF risk stratification in a multicenter real-world cohort.

Methods

We enrolled 665 patients aged ≥40 years who underwent 12-lead ECGs using an AI-enabled electrocardiograph (FCP-9900).

n = 665 patients
0.64-0.69
Results
The modest ability of AI-ECG alone to predict irregular heartbeat risk
n = 665 patients
More results

AF prevalence increased across AI-ECG risk categories, with significantly higher odds in the mid-high and high groups vs low.

SHapley Additive exPlanations analysis showed CHA 2 DS 2 -VASc as the most influential predictor, whereas AI-ECG provided modest incremental value.

“
Conclusion · 1 of 2

AI-ECG provides rapid, low-cost AF risk estimation from a single sinus rhythm ECG; however, its predictive performance is modest compared with clinical scores.

Conclusion · 2 of 2

At present, AI-ECG may complement, but not replace, traditional risk stratification.

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