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Region-Based Semantic Factorization in GANs (2202.09649v2)

Published 19 Feb 2022 in cs.CV

Abstract: Despite the rapid advancement of semantic discovery in the latent space of Generative Adversarial Networks (GANs), existing approaches either are limited to finding global attributes or rely on a number of segmentation masks to identify local attributes. In this work, we present a highly efficient algorithm to factorize the latent semantics learned by GANs concerning an arbitrary image region. Concretely, we revisit the task of local manipulation with pre-trained GANs and formulate region-based semantic discovery as a dual optimization problem. Through an appropriately defined generalized Rayleigh quotient, we manage to solve such a problem without any annotations or training. Experimental results on various state-of-the-art GAN models demonstrate the effectiveness of our approach, as well as its superiority over prior arts regarding precise control, region robustness, speed of implementation, and simplicity of use.

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Authors (5)
  1. Jiapeng Zhu (26 papers)
  2. Yujun Shen (111 papers)
  3. Yinghao Xu (57 papers)
  4. Deli Zhao (66 papers)
  5. Qifeng Chen (187 papers)
Citations (33)

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