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Updated: Apr 14, 2026

Estimating Bilateral Atrial Function by Cardiovascular Magnetic Resonance Feature Tracking in Patients with Paroxysmal Atrial Fibrillation
Published on: July 20, 2022
mCardiacDx: Radar-Driven Contactless Monitoring and Diagnosis of Atrial Fibrillation
Arjun Kumar1,2, Noppanat Wadlom1,2, Jaeheon Kwak2
1Department of Computer ScienceKAIST Daejeon 34141 South Korea.
Insights
A new radar system, mCardiacDx, accurately monitors and diagnoses atrial fibrillation (AF) by reconstructing heart pulse waveforms (HPWs) from complex reflections. This contactless approach significantly outperforms existing methods for continuous cardiac care.
Area of Science:
- Biomedical Engineering
- Cardiology
- Signal Processing
Background:
- Atrial fibrillation (AF) is a common arrhythmia requiring continuous monitoring for timely intervention.
- Conventional monitoring methods (ECG, wearables) face limitations in patient comfort and specialized expertise.
- Existing contactless monitoring struggles with disrupted reflections from AF patients due to irregular heartbeats.
Purpose of the Study:
- To develop mCardiacDx, a radar-driven contactless system for accurate AF monitoring and diagnosis.
- To overcome challenges posed by disrupted reflections in AF patients.
- To reconstruct interpretable heart pulse waveforms (HPWs) for improved cardiac care.
Main Methods:
- Introduced a precise target localization (PTL) technique to accurately pinpoint heart reflections.
- Developed an encoder-decoder model (HPR-Net) to transform reflections into HPWs, addressing temporal inconsistencies.
- Validated mCardiacDx against a state-of-the-art approach on 48 subjects (24 healthy, 24 AF) in a real-world setting.
Main Results:
- mCardiacDx significantly outperformed the baseline in AF monitoring and diagnosis.
- Achieved superior HPW fidelity for AF patients (DTW score improved from 5.92 to 2.92).
- Demonstrated reduced HR/RR interval error (e.g., HR MedAPE from 9.10% to 2.94%) and higher diagnostic accuracy (0.93) and recall (0.91).
Conclusions:
- mCardiacDx offers a robust, non-contact solution for continuous cardiac monitoring.
- The system effectively addresses critical gaps in real-world AF monitoring and diagnosis.
- mCardiacDx shows significant potential for advancing non-invasive cardiac care.
Abstract:
Arrhythmia is a common cardiac condition that can precipitate severe complications without timely intervention. Among them, atrial fibrillation (AF) is the most common form. While continuous monitoring is essential for timely diagnosis, conventional approaches such as electrocardiogram (ECG) and wearable devices are constrained by their reliance on specialized medical expertise and patient discomfort from their contact nature. Existing contactless monitoring, primarily designed for healthy subjects, face significant challenges when analyzing reflections from AF patients due to disrupted spatial stability and temporal consistency caused by underlying irregular heart contractions. In this paper, we introduce mCardiacDx, a radar-driven contactless system that accurately analyzes these complex reflections and reconstructs heart pulse waveforms (HPWs) for AF monitoring and diagnosis. The key technical contributions of our work include a novel precise target localization (PTL) technique that accurately locates heart reflections despite spatial disruptions, an encoder-decoder model (HPR-Net) that effectively transforms these reflections into HPWs, addressing temporal inconsistencies, and a final analysis module for AF monitoring and diagnosis. Our evaluation on a dataset of 48 subjects (24 healthy, 24 with AF) in a seated, normal breathing, real-world setting shows that both mCardiacDx and the PTL technique significantly outperform the state-of-the-art approach in monitoring and diagnosing AF.
Objective:
To develop a contactless radar-driven system, mCardiacDx, that overcomes reflection disruption challenges in AF patients to accurately reconstruct interpretable heart pulse waveforms (HPWs) for monitoring and diagnosis.
Methods And Procedures:
We introduce a PTL technique to locate heart reflections despite spatial disruptions, and an encoder-decoder model (HPR-Net) to robustly process reflections and reconstruct interpretable HPWs, addressing temporal inconsistencies. The HPWs are then processed by a final analysis module for AF monitoring and diagnosis. mCardiacDx is validated against a state-of-the-art approach (baseline) on a dataset of 48 subjects (24 healthy, 24 with AF) in a seated, normal breathing, real-world setting. This validation confirms the system's robustness and generalizability to real-world seated scenarios variations in posture and environment.
Results:
mCardiacDx significantly outperforms the baseline in both monitoring and diagnosis. HPW fidelity (Dynamic time warping (DTW) score) for AF patients improves from 5.92 to 2.92. HR/RR interval median absolute percentage error (MedAPE) reduced (e.g., HR from 9.10 % to 2.94 %; RR interval from 8.42 % to 2.95 %). Our system achieves superior diagnostic performance with 0.93 accuracy, and 0.91 recall (sensitivity), significantly surpassing the baseline's accuracy of 0.85 and recall of 0.75, while both maintain a specificity of 0.96.
Conclusion:
mCardiacDx is a robust, non-contact system for continuous cardiac care, addressing a critical gap in real-world AF monitoring and diagnosis.
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