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RD-GAN: Few/Zero-Shot Chinese Character Style Transfer via Radical Decomposition and Rendering

机译:RD-GaN:通过激进分解和渲染,少数/零射击汉字风格转移

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Style transfer has attracted much interest owing to its various applications. Compared with English character or general artistic style transfer, Chinese character style transfer remains a challenge owing to the large size of the vocabulary (70224 characters in GB18010-2005) and the complexity of the structure. Recently some GAN-based methods were proposed for style transfer; however, they treated Chinese characters as a whole, ignoring the structures and radicals that compose characters. In this paper, a novel radical decomposition-and-rendering-based GAN (RD-GAN) is proposed to utilize the radical-level compositions of Chinese characters and achieves few-shot/zero-shot Chinese character style transfer. The RD-GAN consists of three components: a radical extraction module (REM), radical rendering module (RRM), and multilevel discriminator (MLD). Experiments demonstrate that our method has a powerful few-shot/zero-shot generalization ability by using the radical-level compositions of Chinese characters.
机译:由于其各种应用,风格转移引起了很多兴趣。与英语角色或一般艺术风格转移相比,由于大尺寸的词汇量(GB18010-2005中的70224个字符)和结构的复杂性,汉字风格转移仍然是一个挑战。最近,提出了一些基于GaN的方法进行了风格转移;但是,他们将汉字整体处理过,忽略了构成字符的结构和激进派。本文提出了一种新颖的分解和渲染的GaN(RD-GaN),以利用汉字的激进级组成,实现了几次射击/零射击汉字风格转移。 RD-GaN由三个组件组成:激进的提取模块(REM),激进的渲染模块(RRM)和多级鉴别器(MLD)。实验表明,我们的方法通过使用汉字的激进级组成具有强大的少量射击/零拍摄能力。

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