用生理频率先验提升远距离心率监测的抗干扰能力
FreqPhys: Repurposing Implicit Physiological Frequency Prior for Robust Remote Photoplethysmography
- 引入生理频段滤波与谱调制,聚焦脉搏相关频率成分
- 在六大数据集上超越现有方法,尤其在运动场景下表现优异
- 适合需要高鲁棒性远程生理监测的研究与应用
远程光体积描记法(rPPG)通过面部视频捕捉微弱肤色变化实现无接触生理监测。然而,现有方法多依赖时域建模,易受运动伪影和光照波动影响,微弱生理信号常被噪声掩盖。为此,本文提出频域引导的FreqPhys框架,显式利用生理频率先验提升信号恢复鲁棒性。首先通过生理带通滤波模块抑制带外干扰,再结合自适应谱选择与生理谱调制,强化脉搏相关频率成分并抑制带内残留噪声。跨域表征学习模块融合频域先验与深层时域特征,捕捉时空依赖关系。最后采用频率感知的条件扩散过程逐步重建高质量rPPG信号。在六个基准数据集上的大量实验表明,FreqPhys显著优于当前最优方法,尤其在复杂运动条件下优势明显,凸显了显式建模生理频率先验的重要性。源代码将公开。
原文摘要 · Abstract (English)
Remote photoplethysmography (rPPG) enables contactless physiological monitoring by capturing subtle skin-color variations from facial videos. However, most existing methods predominantly rely on time-domain modeling, making them vulnerable to motion artifacts and illumination fluctuations, where weak physiological clues are easily overwhelmed by noise. To address these challenges, we propose FreqPhys, a frequency-guided rPPG framework that explicitly leverages physiological frequency priors for robust signal recovery. Specifically, FreqPhys first applies a Physiological Bandpass Filtering module to suppress out-of-band interference, and then performs Physiological Spectrum Modulation together with adaptive spectral selection to emphasize pulse-related frequency components while suppress residual in-band noise. A Cross-domain Representation Learning module further fuses these spectral priors with deep time-domain features to capture informative spatial--temporal dependencies. Finally, a frequency-aware conditional diffusion process progressively reconstructs high-fidelity rPPG signals. Extensive experiments on six benchmarks demonstrate that FreqPhys yields significant improvements over state-of-the-art approaches, particularly under challenging motion conditions. It highlights the importance of explicitly modeling physiological frequency priors. The source code will be released.
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