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Papers

MixFace: Improving Face Verification Focusing on Fine-grained Conditions

2021-11-02 · Junuk Jung, Sungbin Son, Joochan Park, Yongjun Park, Seonhoon Lee, Heung-Seon Oh

The performance of face recognition has become saturated for public benchmark datasets such as LFW, CFP-FP, and AgeDB, owing to the rapid advances in CNNs. However, the effects of faces with various fine-grained conditions on FR models have not been investigated because of the absence of such datasets. This paper analyzes their effects in terms of different conditions and loss functions using K-FACE, a recently introduced FR dataset with fine-grained conditions. We propose a novel loss function, MixFace, that combines classification and metric losses. The superiority of MixFace in terms of effectiveness and robustness is demonstrated experimentally on various benchmark datasets.

📄 PDF Abstract BibTeX arXiv:2111.01717

Code (1)

jung-jun-uk/mixface 공식 구현 pytorch

Tasks

Face RecognitionFace Verification

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