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Automatic Generation of Chinese Character Based on Human Vision and Prior Knowledge of Calligraphy

机译:基于人的视觉和书法先验知识的汉字自动生成

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Prior knowledge of Chinese calligraphy is modeled in this paper,and the hierarchical relationship of strokes and radicals is represented by a novel five layer framework.Calligraphist's unique calligraphy skill is analyzed and his particular strokes,radicals and layout patterns provide raw element for the proposed five layers.The criteria of visual aesthetics based on Marr's vision assumption are built for the proposed algorithm of automatic generation of Chinese character.The Bayesian statistics is introduced to characterize the character generation process as a Bayesian dynamic model,in which,parameters to translate,rotate and scale strokes,radicals are controlled by the state equation,as well as the proposed visual aesthetics is employed by the measurement equation.Experimental results show the automatically generated characters have almost the same visual acceptance compared to calligraphist's artwork.
机译:本文以中国书法的先验知识为模型,以新颖的五层框架来表示笔画和部首的层次关系。分析了书法家的独特书法技巧,他的笔画,基调和版面样式为拟议的五个方面提供了原始元素。为提出的汉字自动生成算法建立了基于马尔的视觉假设的视觉美学标准。引入贝叶斯统计量将字符生成过程表征为贝叶斯动态模型,在该模型中,翻译,旋转参数实验结果表明,与书法家的作品相比,自动生成的字符具有几乎相同的视觉接受度。

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