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首页> 外文期刊>Forensic science international >Handwriting based writer recognition using implicit shape codebook
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Handwriting based writer recognition using implicit shape codebook

机译:基于手写的作家识别使用隐式形状码本

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Writer characterization from images of handwriting has remained an important research problem in the handwriting recognition community that finds applications in forensics, paleography and neuropsychology. This paper presents a study to evaluate the effectiveness of an implicit shape codebook technique to recognize writer from digitized images of handwriting. The technique relies on identifying the key points in handwriting and clustering the patches around these key points to generate an implicit shape codebook. A writer is then characterized by the probability distribution of producing the codebook patterns. Experiments are carried out in text-dependent as well text-independent mode using the standard BFL and CVL databases of handwriting images. Promising identification and verification performance is reported in a number of interesting experimental scenarios. (C) 2019 Elsevier B.V. All rights reserved.
机译:手写图像图像的作者表征在手写识别社区中仍然是一个重要的研究问题,该识别社区在取证,古典学和神经心理学中找到了应用。 本文介绍了评估隐式形状码本技术的有效性,从手写的数字化图像识别作者。 该技术依赖于识别手写中的关键点和群集这些关键点周围的修补程序以生成隐式形状码本。 然后,作者的特征在于产生码本模式的概率分布。 使用手写图像的标准BFL和CVL数据库,在文本 - 独立模式中以文本相关模式进行实验。 有希望的识别和验证性能在许多有趣的实验方案中报告。 (c)2019年Elsevier B.V.保留所有权利。

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