Vollständiger Abstract
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Abstract Background Ballistocardiography (BCG)-based heart rate (HR) monitoring faces accuracy degradation due to motion artifacts, limiting its practical deployment. Objective This study aims to enhance HR estimation reliability under motion-contaminated conditions while ensuring real-time performance. Methods A hybrid system integrating adaptive filtering and enhanced continuous wavelet transform (CWT) is developed. The framework localizes motion segments (95.1% accuracy) and employs spectral reconstruction via magnitude-frequency nullification to restore HR from contaminated windows. Computational latency was evaluated on an embedded ARM platform to verify real-time feasibility. Results Validation using 6000 min of data demonstrated that the proposed method achieved an MAE of 2.94 BPM, comparable to the CNN-LSTM baseline (2.85 BPM), while reducing the average processing latency from 450.2 ms to 86.4 ms. Compared with conventional methods, the proposed framework reduced the MAE by 53.8% and improved monitoring stability by 35.6%. Bland-Altman analysis confirmed limits of agreement within [−4.77, 5.23] BPM, validating clinical reliability. Conclusions The proposed hybrid framework provides a computationally efficient and accurate solution for non-contact HR monitoring in motion-prone and bed-based clinical environments.
Bibliografischer Nachweis
Publikationsdaten
- Autor:innen
- Zeya Wang, Zhumu Fu, Hua Wang, Xiutao Cui, Yeping Zheng, Qin Yu, Xin Chen, Qiqi Shao, Bin Feng
- Quelle
- Technology and Health Care
- Publikation
- 2026-01-01
- Band / Ausgabe
- Nicht angegeben
- Seiten
- Nicht angegeben
- ISSN / ISBN
- 0928-7329, 1878-7401
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Zitierfähiger Nachweis
Zeya Wang, Zhumu Fu, Hua Wang, Xiutao Cui, Yeping Zheng, Qin Yu, Xin Chen, Qiqi Shao, Bin Feng (2026). Accuracy improvement for heart rate monitoring from bed-based ballistocardiography signals with motion artifacts. Technology and Health Care. https://doi.org/10.1177/09287329261481871
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