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Avatar-Net: Multi-scale Zero-Shot Style Transfer by Feature Decoration

机译:Avatar-Net:通过特征装饰进行多尺度零射击样式转换

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Zero-shot artistic style transfer is an important image synthesis problem aiming at transferring arbitrary style into content images. However, the trade-off between the generalization and efficiency in existing methods impedes a high quality zero-shot style transfer in real-time. In this paper, we resolve this dilemma and propose an efficient yet effective Avatar-Net that enables visually plausible multi-scale transfer for arbitrary style. The key ingredient of our method is a style decorator that makes up the content features by semantically aligned style features from an arbitrary style image, which does not only holistically match their feature distributions but also preserve detailed style patterns in the decorated features. By embedding this module into an image reconstruction network that fuses multi-scale style abstractions, the Avatar-Net renders multi-scale stylization for any style image in one feed-forward pass. We demonstrate the state-of-the-art effectiveness and efficiency of the proposed method in generating high-quality stylized images, with a series of successive applications include multiple style integration, video stylization and etc.
机译:零镜头艺术风格转移是一个重要的图像合成问题,旨在将任意样式转移到内容图像中。但是,现有方法中的泛化和效率之间的折衷阻碍了实时的高质量零击样式传输。在本文中,我们解决了这一难题,并提出了一种有效而有效的Avatar-Net,该网络可实现视觉上合理的多尺度转换,以实现任意样式。我们方法的关键要素是样式装饰器,该样式装饰器通过从任意样式图像中语义对齐的样式特征构成内容特征,这不仅从整体上匹配它们的特征分布,而且还保留了装饰特征中的详细样式样式。通过将此模块嵌入到融合多尺度样式抽象的图像重建网络中,Avatar-Net可以在一次前馈过程中为任何样式图像呈现多尺度样式。我们演示了该方法在生成高质量风格化图像方面的最新有效性和效率,并在一系列连续的应用程序中进行了应用,包括多种样式集成,视频样式化等。

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