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Model-based Persian calligraphy synthesis via learning to transfer templates to personal styles

机译:基于模型的波斯书法综合,通过学习将模板转移到个人风格

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Current software tools for computer generation of Persian calligraphy can be mostly described as conventional fonts and typesetting software, which basically neglect the 'variations' of real calligraphy performed by hand, in terms of personalization to different calligraphers' styles, as well as their statistical characteristics. In this paper, we address the problem of natural-looking Persian calligraphy synthesis via a machine learning based approach, at the level of subwords. Given images of samples written by a calligrapher, we train a parametric model to imitate the style. The core idea is to make use of templates (fonts) as a source of background knowledge, and learn a probabilistic mapping from them to personal styles of calligraphers, which is posed as transformation of attributed graphs using neural networks with sliding windows. This can be understood as adding 'naturalness' to a Persian calligraphy font, in essence. We report both objective and subjective evaluations, including the model performance in writer (calligrapher) identification task and Visual Turing Test. The results of the latter suggest that humans are unable to distinguish the calligraphy synthesized by our approach from real calligraphy in many cases.
机译:目前用于计算机生成波斯书法的软件工具可以大多被描述为传统的字体和排版软件,这基本上忽略了手动执行的真实书法的“变化”,就不同的书法商式的个性化以及它们的统计特征。在本文中,我们通过基于机器学习的方法解决了自然观看的波斯书法综合的问题,处于次字的水平。给定由书法家写的样品的图像,我们训练参数模型来模仿风格。核心思想是利用模板(字体)作为背景知识的来源,并从中获取概率映射到所谓的书法者的个人方式,这被作为使用具有滑动窗口的神经网络的归因图的转换构成。这可以理解为将“自然”添加到波斯书法字体,本质上。我们报告了目标和主观评估,包括作者(书法家)识别任务和视觉图灵测试的模型性能。后者的结果表明,人类无法区分我们的方法在许多情况下从真正的书法中综合的书法。

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