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One-shot Line Extraction from Color Illustrations

机译:从彩色插图提取单次线路

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Sketch colorization has been explored extensively using deep learning-based approaches. However, there are few works on the inverse problem of extracting lines from color illustrations, which is challenging due to the abstract illustration in cartoon rendering and the diversity of colorization style. In this paper, we propose a learning-based framework to explore one-shot line extraction from color illustrations. To avoid over-fitting, we simplified the proposed model and proposed a method for data augmentation when training using a single “color illustration-line drawing” pair. Then, we verified the model's effectiveness and efficiency in a group of color illustrations with similar colorization style. The experiments showed that the proposed, our method can outperform the conventional CNN (convolution neural network)-based sketch extraction methods.
机译:使用深度学习的方法广泛探讨了素描着色。 然而,很少有关于从彩色插图中提取线的逆问题,这是由于卡通渲染的抽象例证和着色方式的多样性挑战。 在本文中,我们提出了一种基于学习的框架来探索从彩色插图的单次线路提取。 为避免过度拟合,我们简化了所提出的模型,并在使用单个“彩色插图线绘制”对时,提出了一种用于数据增强的方法。 然后,我们在具有类似着色风格的一组颜色插图中验证了模型的效率和效率。 实验表明,所提出的,我们的方法可以优于传统的CNN(卷积神经网络)的基础提取方法。

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