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Text-independent writer recognition using multi-script handwritten texts

机译:使用多脚本手写文本的与文本无关的作者识别

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This paper presents a text-independent writer recognition method in a multi-script environment. Handwritten texts in Greek and English are considered in this study. The objective is to recognize the writer of a handwritten text in one script from the samples of the same writer in another script and hence validate the hypothesis that writing style of an individual remains constant across different scripts. Another interesting aspect of our study is the use of short handwritten texts which was implied to resemble the real life scenarios where the forensic experts, in general, find only short pieces of texts to identify a given writer. The proposed method is based on a set of run-length features which are compared with the well-known state-of-the-art features. Classification is carried out using K-Nearest Neighbors (K-NN) and Support Vector Machines (SVM). The experimental results obtained on a database of 126 writers with 4 samples per writer show that the proposed scheme achieves interesting performances on writer identification and verification in a multi-script environment.
机译:本文提出了一种在多脚本环境下与文本无关的作者识别方法。本研究考虑希腊语和英语的手写文本。目的是从一个脚本中同一作者的样本中识别出一个脚本中的手写文本的作者,从而验证以下假设:一个人的写作风格在不同脚本中保持不变。我们研究的另一个有趣方面是使用简短的手写文本,这暗示着类似于现实生活中的场景,在该场景中,法医专家通常只查找简短的文本来识别给定的作者。所提出的方法基于一组游程特征,这些游程特征与众所周知的最新特征进行了比较。分类使用K最近邻(K-NN)和支持向量机(SVM)进行。在126位作者的数据库中获得的实验结果(每位作者4个样本)表明,该方案在多脚本环境中在作者识别和验证方面取得了令人感兴趣的性能。

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