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On the Diversity of Conditional Image Synthesis With Semantic Layouts

机译:关于语义布局的条件图像合成的多样性

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摘要

Many image processing tasks can be formulated as translating images between two image domains such as colorization, super-resolution, and conditional image synthesis. In most of these tasks, an input image may correspond to multiple outputs. However, current existing approaches only show minor stochasticity of the outputs. In this paper, we present a novel approach to synthesize diverse realistic images corresponding to a semantic layout. We introduce a diversity loss objective that maximizes the distance between synthesized image pairs and relates the input noise to the semantic segments in the synthesized images. Thus, our approach can not only produce multiple diverse images but also allow users to manipulate the output images by adjusting the noise manually. The experimental results show that images synthesized by our approach are more diverse than that of the current existing works and equipping our diversity loss does not degrade the reality of the base networks. Moreover, our approach can be applied to unpaired datasets.
机译:可以将许多图像处理任务配制成在两个图像域之间的图像平移,例如着色,超分辨率和条件图像合成。在大多数这些任务中,输入图像可以对应于多个输出。但是,当前现有的方法仅显示输出的轻微随机性。在本文中,我们提出了一种新颖的方法来综合对应于语义布局的多样化逼真图像。我们引入了分集的损失目标,可以最大化合成图像对之间的距离,并将输入噪声与合成图像中的语义段相关联。因此,我们的方法不仅可以产生多种不同的图像,而且还允许用户通过手动调整噪声来操纵输出图像。实验结果表明,我们的方法合成的图像比当前现有工程的图像更多样化,并配备我们的多样性损失不会降低基础网络的现实。此外,我们的方法可以应用于未配对的数据集。

著录项

  • 来源
    《IEEE Transactions on Image Processing》 |2019年第6期|2898-2907|共10页
  • 作者单位

    Zhejiang Univ Coll Comp Sci Key Lab CAD & CG Hangzhou 310058 Zhejiang Peoples R China|Zhejiang Univ Alibaba Zhejiang Univ Joint Inst Frontier Technol Hangzhou 310058 Zhejiang Peoples R China;

    Zhejiang Univ Coll Comp Sci Key Lab CAD & CG Hangzhou 310058 Zhejiang Peoples R China;

    Zhejiang Univ Coll Comp Sci Key Lab CAD & CG Hangzhou 310058 Zhejiang Peoples R China|Fabu Inc Hangzhou 310012 Zhejiang Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Image translation; conditional image synthesis; GAN; diversity loss; unpaired training;

    机译:图像翻译;条件图像合成;GaN;多样性损失;未配对培训;
  • 入库时间 2022-08-18 20:56:06

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