Medical Manifestation-Aware De-Identification
Yuan Tian, Shuo Wang, Guangtao Zhai
Abstract
Face de-identification (DeID) has been widely studied for common scenes, but remains under-researched for medical scenes, mostly due to the lack of large-scale patient face datasets. In this paper, we release MeMa, consisting of over 40,000 photo-realistic patient faces. MeMa is re-generated from massive real patient photos. By carefully modulating the generation and data-filtering procedures, MeMa avoids breaching real patient privacy, while ensuring rich and plausible medical manifestations. We recruit expert clinicians to annotate MeMa with both coarse- and fine-grained labels, building the first medical-scene DeID benchmark. Additionally, we propose a baseline approach for this new medical-aware DeID task, by integrating data-driven medical semantic priors into the DeID procedure. Despite its conciseness and simplicity, our approach substantially outperforms previous ones.
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Install the CLIlune papers fulltext a3ede0b4-8059-4a45-86af-a2625e7d47e7Cited by top-tier papers3
- Knowledge Distillation for Learned Image CompressionYunuo Chen, Zezheng Lyu, Bing He, Ning Cao et al.ICCV 2025 · 7 citations
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- Towards All-in-One Medical Image Re-IdentificationYuan Tian, Kaiyuan Ji, Rongzhao Zhang, Yankai Jiang et al.CVPR 2025
Builds on15
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- High-Resolution Image Synthesis with Latent Diffusion ModelsRobin Rombach, Andreas Blattmann, Dominik Lorenz, Patrick Esser et al.CVPR 2022 · 13,123 citations
- Emergent Correspondence from Image DiffusionLuming Tang, Menglin Jia, Qianqian Wang, Cheng Perng Phoo et al.NeurIPS 2023 · 555 citations
- Unsupervised Semantic Correspondence Using Stable DiffusionEric Hedlin, Gopal Sharma, Shweta Mahajan, Hossam Isack et al.NeurIPS 2023 · 152 citations
- DGaze: CNN-Based Gaze Prediction in Dynamic ScenesZhiming Hu, Sheng Li, Congyi Zhang, Kangrui Yi et al.IEEE VR 2020 · 105 citations
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