Shape and amplitude decoupling in pulsatile physiological signal synthesis and its evaluation
Junetae Kim1,2, Kyoungsuk Park3, Lei Chen3
1Graduate School of Cancer Science and Policy, National Cancer Center, 323 Ilsan-ro, Ilsandong-gu, Goyang-si, Gyeonggi-do, Republic of Korea. lyjune0070@gmail.com.
Nature Communications
|April 29, 2026
Summary
We developed VABAM, a new method to generate physiological signals like ECGs. It separates signal shape from amplitude, allowing better control for clinical applications.
Area of Science:
- Biomedical Engineering
- Signal Processing
- Cardiovascular Dynamics
Background:
- Pulsatile physiological signals (e.g., arterial blood pressure, ECG) encode cardiovascular dynamics.
- Current generative methods often mix waveform shape and amplitude, limiting control.
Purpose of the Study:
- To introduce VABAM, a framework for controlled physiological signal generation.
- To decouple waveform shape and amplitude for independent manipulation.
Main Methods:
- Developed VABAM, a generative framework using cascaded filtering.
- Introduced novel metrics for evaluating synthesis quality (shape factorization, preservation, controllability, spectral similarity).
Main Results:
- VABAM successfully decouples waveform shape and amplitude.
- The framework outperforms existing methods on benchmark datasets.
- Demonstrated significance of shape-amplitude decoupling in signal generation.
Conclusions:
- VABAM enables controlled physiological signal generation with independent shape and amplitude modulation.
- Potential applications include amplitude-targeted augmentation, uncertainty-quantified prediction, and real-time anomaly monitoring.
- Advances clinical decision-making in physiological signal analysis.
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