TopoFR: A Closer Look at Topology Alignment on Face Recognition
Jun Dan, Yang Liu, Jiankang Deng, Haoyu Xie, Siyuan Li, Baigui Sun, Shan Luo
摘要
The field of face recognition (FR) has undergone significant advancements with the rise of deep learning. Recently, the success of unsupervised learning and graph neural networks has demonstrated the effectiveness of data structure information. Considering that the FR task can leverage large-scale training data, which intrinsically contains significant structure information, we aim to investigate how to encode such critical structure information into the latent space. As revealed from our observations, directly aligning the structure information between the input and latent spaces inevitably suffers from an overfitting problem, leading to a structure collapse phenomenon in the latent space. To address this problem, we propose TopoFR, a novel FR model that leverages a topological structure alignment strategy called PTSA and a hard sample mining strategy named SDE. Concretely, PTSA uses persistent homology to align the topological structures of the input and latent spaces, effectively preserving the structure information and improving the generalization performance of FR model. To mitigate the impact of hard samples on the latent space structure, SDE accurately identifies hard samples by automatically computing structure damage score (SDS) for each sample, and directs the model to prioritize optimizing these samples. Experimental results on popular face benchmarks demonstrate the superiority of our TopoFR over the state-of-the-art methods. Code and models are available at: https://github.com/modelscope/facechain/tree/main/face_module/TopoFR.
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引用它的顶会 Paper6
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- Solving Discrete (Semi) Unbalanced Optimal Transport with Equivalent Transformation Mechanism and KKT-Multiplier RegularizationWeiming Liu, Xinting Liao, Jun Dan, Fan Wang 等NeurIPS 2025 · 被引用 2 次
- Casting the Net! Revisiting MasterFace Impersonation AttacksSeunghun Paik, Sunpill Kim, Chanwoo Hwang, Jae Hong SeoCCS 2026
- Distinguish Then Exploit: Source-free Open Set Domain Adaptation via Weight Barcode Estimation and Sparse Label AssignmentWeiming Liu, Jun Dan, Fan Wang, Xinting Liao 等CVPR 2025
它引用的顶会 Paper29
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- Probabilistic Face EmbeddingsYichun Shi, Anil K. JainICCV 2019 · 被引用 362 次
- Topological AutoencodersMichael Moor, Max Horn, Bastian Rieck, Karsten M. BorgwardtICML 2020 · 被引用 192 次
- Mis-Classified Vector Guided Softmax Loss for Face RecognitionXiaobo Wang, Shifeng Zhang, Shuo Wang, Tianyu Fu 等AAAI 2020 · 被引用 188 次
- Killing Two Birds with One Stone: Efficient and Robust Training of Face Recognition CNNs by Partial FCXiang An, Jiankang Deng, Jia Guo, Ziyong Feng 等CVPR 2022 · 被引用 77 次
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