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Comparative study on language independent forensic writer identification

机译:独立于语言的法医鉴定的比较研究

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Offline writer identification is widely applied in various research areas. Forensic document analysis is a typical motivation in which researchers strive for the best possible performance using limited amount of information. This paper is concerned with offline, text-dependent writer identification. Three techniques are analyzed and evaluated on different levels of analysis using different scripts. The first technique is based on geometric moments. The second technique relies on signature matching. And the third technique is derived from fractal analysis. Several tests are performed on both English and Arabic texts on the phrase level, the word level and the character level. The best identification accuracy reached a top-1 result of 94% and 99.6% on a database of 50 writers using selected word and character data sets respectively. The performance of the system was also tested on selected subsets from the IAM English handwriting benchmark database.
机译:离线作者识别广泛应用于各个研究领域。法证文件分析是一种典型的动机,在这种动机中,研究人员使用有限的信息量来争取可能的最佳性能。本文涉及脱机的,与文本相关的作者识别。使用不同的脚本在不同的分析级别上分析和评估了三种技术。第一种技术基于几何矩。第二种技术依赖签名匹配。第三种技术是从分形分析得出的。在短语级别,单词级别和字符级别上,对英语和阿拉伯语文本都进行了一些测试。在分别使用选定的单词和字符数据集的50位作者组成的数据库中,最佳识别准确率分别达到94%和99.6%的top-1结果。还对IAM英语手写基准数据库中选定的子集进行了系统性能测试。

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