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Privacy-Preserving Semantic Segmentation without Key Management
April 16, 2026 ยท Grace Period ยท ๐ ICCE-TW 2026
Authors
Mare Hirose, Shoko Imaizumi, Hitoshi Kiya
arXiv ID
2604.16523
Category
cs.CV: Computer Vision
Cross-listed
cs.CR
Citations
0
Venue
ICCE-TW 2026
Abstract
This paper proposes a novel privacy-preserving semantic segmentation method that can use independent keys for each client and image. In the proposed method, the model creator and each client encrypt images using locally generated keys, and model training and inference are conducted on the encrypted images. To mitigate performance degradation, an image encryption method is applied to model training in addition to the generation of test images. In experiments, the effectiveness of the proposed method is confirmed on the Cityscapes dataset under the use of a vision transformer-based model, called SETR.
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