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Writer identification using texture descriptors of handwritten fragments

机译:使用手写片段的纹理描述符进行作家识别

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This paper presents a texture based approach for identification of writers from offline images of handwriting. Contrary to the classical texture based techniques which extract texture information at page or block level, we exploit the texture at a very small observation scale. The proposed technique divides a given handwriting into small fragments and considers each fragment as a texture. Texture descriptors including histograms of Local Binary Patterns (LBP), Local Ternary Patterns (LTP) and Local Phase Quantization (LPQ) are then computed from these fragments. The writer of a document is characterized by the set of histograms calculated from all the fragments in the writing. Two writings are compared by computing the distance between the descriptors of their writing fragments. The technique evaluated on IFN/ENIT and IAM databases comprising handwritten text in Arabic and English, respectively, realized high identification rates. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文提出了一种基于纹理的方法,可以从离线手写图像中识别作者。与传统的基于纹理的技术相反,该技术在页面或块级别提取纹理信息,我们以非常小的观察范围来利用纹理。所提出的技术将给定的笔迹分成小片段,并将每个片段视为一个纹理。然后,从这些片段中计算出纹理描述符,包括局部二值模式(LBP),局部三元模式(LTP)和局部相位量化(LPQ)的直方图。文档的作者的特征是根据写作中所有片段计算出的一组直方图。通过计算两个写作片段的描述符之间的距离来比较两个写作。在分别包含阿拉伯文和英文手写文本的IFN / ENIT和IAM数据库上评估的技术实现了很高的识别率。 (C)2015 Elsevier Ltd.保留所有权利。

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