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Semi-supervised Adversarial Image-to-image Translation

机译:半监督对抗图像到图像翻译

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摘要

Image-to-image translation involves translating images in one domain into images in another domain, while keeping some aspects of the image consistent across the domains. Image translation models that keep the category of the image consistent can be useful for applications like domain adaptation. Generative models like variational autoencoders have the ability to extract latent factors of generation from an image. Based on generative models like variational autoencoders and generative adversarial networks, we develop a semi-supervised image-to-image translation procedure. We apply this procedure to perform image translation and domain adaptation for complex digit datasets.
机译:图像到图像的转换涉及将一个域中的图像转换为另一域中的图像,同时在整个域中保持图像的某些方面一致。保持图像类别一致的图像转换模型可用于诸如域自适应之类的应用程序。诸如变型自动编码器之类的生成模型具有从图像中提取潜在生成因子的能力。基于可变自动编码器和生成对抗网络等生成模型,我们开发了一种半监督的图像到图像翻译程序。我们应用此过程对复杂的数字数据集执行图像转换和域自适应。

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