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EasyFont: A Style Learning-Based System to Easily Build Your Large-Scale Handwriting Fonts

机译:EasyFont:基于样式学习的系统,可轻松构建大型手写字体

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摘要

Generating personal handwriting fonts with large amounts of characters is a boring and time-consuming task. For example, the official standard GB18030-2000 for commercial font products consists of 27,533 Chinese characters. Consistently and correctly writing out such huge amounts of characters is usually an impossible mission for ordinary people. To solve this problem, we propose a system, EasyFont, to automatically synthesize personal handwriting for all (e.g., Chinese) characters in the font library by learning style from a small number (as few as 1%) of carefully-selected samples written by an ordinary person. Major technical contributions of our system are twofold. First, we design an effective stroke extraction algorithm that constructs best-suited reference data from a trained font skeleton manifold and then establishes correspondence between target and reference characters via a non-rigid point set registration approach. Second, we develop a set of novel techniques to learn and recover users' overall handwriting styles and detailed handwriting behaviors. Experiments including Turing tests with 97 participants demonstrate that the proposed system generates high-quality synthesis results, which are indistinguishable from original handwritings. Using our system, for the first time, the practical handwriting font library in a user's personal style with arbitrarily large numbers of Chinese characters can be generated automatically. It can also be observed from our experiments that recently-popularized deep learning based end-to-end methods are not able to properly handle this task, which implies the necessity of expert knowledge and handcrafted rules for many applications.
机译:生成带有大量字符的个人手写字体是一项无聊且耗时的任务。例如,商业字体产品的官方标准GB18030-2000包含27,533个汉字。始终如一地正确地写出如此大量的字符对于普通人来说通常是不可能完成的任务。为解决此问题,我们提出了一种EasyFont系统,该系统通过从少量(少至1%)精心挑选的样本中学习样式来自动合成字体库中所有(例如中文)字符的个人笔迹。一个普通人。我们系统的主要技术贡献是双重的。首先,我们设计一种有效的笔画提取算法,该算法从受过训练的字体骨架流形构造最适合的参考数据,然后通过非刚性点集注册方法在目标字符和参考字符之间建立对应关系。其次,我们开发了一套新颖的技术来学习和恢复用户的整体笔迹样式和详细的笔迹行为。包括针对97位参与者的图灵测试在内的实验表明,该系统可生成高质量的合成结果,与原始笔迹无法区分。首次使用我们的系统,可以自动生成具有任意数量汉字的用户个人风格的实用手写字体库。从我们的实验中还可以看出,最近流行的基于深度学习的端到端方法无法正确处理此任务,这意味着需要为许多应用提供专业知识和手工规则。

著录项

  • 来源
    《ACM Transactions on Graphics》 |2019年第1期|6.1-6.18|共18页
  • 作者单位

    Peking Univ, Inst Comp Sci & Technol, 128 Zhongguancun North St, Beijing 100080, Peoples R China;

    Peking Univ, Inst Comp Sci & Technol, 128 Zhongguancun North St, Beijing 100080, Peoples R China;

    Peking Univ, Inst Comp Sci & Technol, 128 Zhongguancun North St, Beijing 100080, Peoples R China;

    Peking Univ, Inst Comp Sci & Technol, 128 Zhongguancun North St, Beijing 100080, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Handwriting; Chinese; style learning; fonts;

    机译:手写;中文;文体学习;字体;

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