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CVPR2025顶会

Diff-Palm: Realistic Palmprint Generation with Polynomial Creases and Intra-Class Variation Controllable Diffusion Models

Jianlong Jin, Chenglong Zhao, Ruixin Zhang, Sheng Shang, Jianqing Xu, Jingyun Zhang, Shaoming Wang, Yang Zhao, Shouhong Ding, Wei Jia, Yunsheng Wu

2025年份
3顶会引用

摘要

Figure 1. Comparison between PCE-Palm [20] and the proposed Diff-Palm. (a) PCE-Palm adopts conditional GAN with Bézier creases [44] as input to generate palmprint datasets. Diff-Palm introduces a polynomial crease and a novel diffusion model for synthesizing datasets with adjustable intra-class variations. (b) The average performance of recognition models, trained on three types of datasets (real data, PCE-Palm generated, and Diff-Palm generated) and evaluated on five public datasets.

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