Face anonymization preserving facial expressions and photometric realism
arXiv cs.CV / 3/19/2026
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Key Points
- The paper proposes a feature-preserving face anonymization framework that uses dense facial landmarks to better retain expressions while concealing identity.
- It introduces lightweight post-processing modules to enforce photometric consistency in lighting and skin color, improving relighting and color stability.
- The authors define evaluation metrics focused on expression fidelity, lighting consistency, and color preservation in addition to standard measures like realism, pose accuracy, and re-identification resistance.
- Experiments on CelebA-HQ show improved realism and higher fidelity in expressions, illumination, and skin tone compared with state-of-the-art baselines, highlighting the approach's value for privacy-preserving facial data.
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