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Learning and Generation of Personal Handwriting Style Chinese Font

机译:个人手写风格中文字体的学习与生成

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Personal handwriting style fonts generation is a diverting but time-consuming task due to the large size of Chinese character set. In addition, unlike standard printed style fonts, hand-writing style fonts are of more complicated stroke and glyph feature. In this paper, an improved network architecture is proposed for learning and generation of personal hand-writing style fonts based on small character set. The network is composed of three sub-networks: 1) a classification network for identifying the general style of the target fonts; 2) a generating network for transferring the identified fonts to the target fonts; 3) a discriminating network for differentiating the generated image from real ones. The experiments revealed the effectiveness of the model for generating personal hand-writing style font with relatively small data size, reduction by a scale of 10 comparing to previous reported works.
机译:个人手写风格的字体生成是由于汉字集的大尺寸而转移但耗时的任务。此外,与标准的印刷风格字体不同,手写风格字体具有更复杂的笔画和字形功能。本文提出了一种改进的网络架构,用于基于小字符集学习和生成个人手写风格字体的学习和生成。网络由三个子网组成:1)用于识别目标字体的一般风格的分类网络; 2)用于将所识别的字体传送到目标字体的生成网络; 3)一种用于将生成的图像与真实图像区分区的判别网络。该实验揭示了模型的有效性,用于生成个人手写风格字体,数据大小相对较小,减少与先前报告的工作相比的10。

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