PhysFormer: Facial Video-based Physiological Measurement with Temporal Difference Transformer
Zitong Yu, Yuming Shen, Jingang Shi, Hengshuang Zhao, Philip H. S. Torr, Guoying Zhao
摘要
Remote photoplethysmography (rPPG), which aims at measuring heart activities and physiological signals from facial video without any contact, has great potential in many applications. Recent deep learning approaches focus on mining subtle rPPG clues using convolutional neural networks with limited spatio-temporal receptive fields, which neglect the long-range spatio-temporal perception and interaction for rPPG modeling. In this paper, we propose the PhysFormer, an end-to-end video transformer based architecture, to adaptively aggregate both local and global spatio-temporal features for rPPG representation enhancement. As key modules in PhysFormer, the temporal difference transformers first enhance the quasi-periodic rPPG features with temporal difference guided global attention, and then refine the local spatio-temporal representation against interference. Furthermore, we also propose the label distribution learning and a curriculum learning inspired dynamic constraint in frequency domain, which provide elaborate supervisions for PhysFormer and alleviate overfitting. Comprehensive experiments are performed on four benchmark datasets to show our superior performance on both intra- and cross-dataset testings. One highlight is that, unlike most transformer networks needed pretraining from large-scale datasets, the proposed PhysFormer can be easily trained from scratch on rPPG datasets, which makes it promising as a novel transformer baseline for the rPPG community. The codes are available at https://github.com/ZitongYu/PhysFormer.
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引用它的顶会 Paper20
- Learning Motion-Robust Remote Photoplethysmography through Arbitrary Resolution VideosJianwei Li, Zitong Yu, Jingang ShiAAAI 2023 · 被引用 65 次
- FactorizePhys: Matrix Factorization for Multidimensional Attention in Remote Physiological SensingJitesh Joshi, Sos S. Agaian, Youngjun ChoNeurIPS 2024 · 被引用 32 次
- RhythmMamba: Fast, Lightweight, and Accurate Remote Physiological MeasurementBochao Zou, Zizheng Guo, Xiaocheng Hu, Huimin MaAAAI 2025 · 被引用 24 次
- Contactless Pulse Estimation Leveraging Pseudo Labels and Self-SupervisionZhihua Li, Lijun YinICCV 2023 · 被引用 21 次
- PhysLLM: Harnessing Large Language Models for Cross-Modal Remote Physiological SensingYiping Xie, Bo Zhao, Mingtong Dai, Jian-Ping Zhou 等ICLR 2026 · 被引用 19 次
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