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Cannygan: Edge-Preserving Image Translation with Disentangled Features

机译:Cannygan:具有解纠缠功能的边缘保留图像转换

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摘要

missing texture and edge information. In this paper, we proposed a framework to translate images while preserving more realistic textures and details. To this end, we disentangle the samples into shared content space and domain-specific style domain. Then, according to the blurred outlines and textures in the source domain, we introduce the classic canny edge detection algorithm to encode the boundary and edge information in the content latent space. We test the proposed method in the thermal to visible image translation scenario and the experimental results demonstrate that the proposed method outperforms several other state-of-the-art models.
机译:缺少纹理和边缘信息。在本文中,我们提出了一个在保留更逼真的纹理和细节的同时转换图像的框架。为此,我们将样本分解为共享的内容空间和特定于域的样式域。然后,根据源域中轮廓和纹理的模糊性,介绍经典的Canny边缘检测算法,对内容潜在空间中的边界和边缘信息进行编码。我们在热到可见光图像转换场景中测试了该方法,实验结果表明,该方法优于其他几种最新模型。

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