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Video-based Heart Rate Estimation with Angle-guided ROI Optimization and Graph Signal Denoising

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Remote photoplethysmography (rPPG) enables non-contact heart rate measurement from facial videos, but its performance is significantly degraded by facial motions such as speaking and head shaking. To address this issue, we propose two plug-and-play modules. The Angle-guided ROI Adaptive Optimization module quantifies ROI-Camera angles to refine motion-affected signals and capture global motion, while the Multi-region Joint Graph Signal Denoising module jointly models intra- and inter-regional ROI signals using graph signal processing to suppress motion artifacts. The modules are compatible with reflection model-based rPPG methods and validated on three public datasets. Results show that jointly use markedly reduces MAE, with an average decrease of 20.38\% over the baseline, while ablation studies confirm the effectiveness of each module. The work demonstrates the potential of angle-guided optimization and graph-based denoising to enhance rPPG performance in motion scenarios.

Gan Pei, Junhao Ning, Boqiu Shen, Yan Zhu, Menghan Hu• 2026

Related benchmarks

TaskDatasetResultRank
Heart Rate estimationPURE
MAE3.78
132
Heart Rate estimationMMPD
MAE13.79
67
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