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Generation of Handwriting by Active Shape Modeling and Global Local Approximation (GLA) Adaptation

机译:通过主动形状建模和全局局部逼近(GLA)适应生成手写

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The generation of handwriting is a complex task. In order to accommodate for the large variations involved in handwritten words deformable templates need to be used. In this paper we propose a handwriting model, based on Active shape modeling (ASM). In a two-step generation process, a template-based ASM generates characters and a Gaussian mixture regression (GMR) model concatenates the generated characters. For real time generation of cursive handwriting an adaptation of Global local approximation (GLA) methodology is used to fit the generated models.
机译:手写的产生是一项复杂的任务。为了适应手写单词中涉及的较大变化,需要使用可变形模板。在本文中,我们提出了一种基于主动形状建模(ASM)的手写模型。在两步生成过程中,基于模板的ASM生成字符,而高斯混合回归(GMR)模型将生成的字符连接起来。对于草书手写的实时生成,使用全局局部逼近(GLA)方法的适应方法来适应所生成的模型。

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