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End-to-End Rubbing Restoration Using Generative Adversarial Networks

2022-05-08 · Gongbo Sun, Zijie Zheng, Ming Zhang

Rubbing restorations are significant for preserving world cultural history. In this paper, we propose the RubbingGAN model for restoring incomplete rubbing characters. Specifically, we collect characters from the Zhang Menglong Bei and build up the first rubbing restoration dataset. We design the first generative adversarial network for rubbing restoration. Based on the dataset we collect, we apply the RubbingGAN to learn the Zhang Menglong Bei font style and restore the characters. The results of experiments show that RubbingGAN can repair both slightly and severely incomplete rubbing characters fast and effectively.

📄 PDF Abstract BibTeX arXiv:2205.03743

Code (1)

qingfengtommy/rubbinggan 공식 구현 pytorch

Tasks

Generative Adversarial Network

Methods 이 논문이 사용한 방법론

Repair 설명 없음

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