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A writer identification and verification system

机译:作家识别和验证系统

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摘要

In this paper, we show that both the writer identification and the writer verification tasks can be carried out using local features such as graphemes extracted from the segmentation of cursive handwriting. We thus enlarge the scope of the possible use of these two tasks which have been, up to now, mainly evaluated on script handwritings. A textual based Information Retrieval model is used for the writer identification stage. This allows the use of a particular feature space based on feature frequencies. Image queries are handwritten documents projected in this feature space. The approach achieves 95% correct identification on the PSI_DataBase and 86% on the IAM_DataBase. Then writer hypothesis retrieved are analysed during a verification phase. We call upon a mutual information criterion to verify that two documents may have been produced by the same writer or not. Hypothesis testing is used for this purpose. The proposed method is first scaled on the PSI_DataBase then evaluated on the IAM_DataBase. On both databases, similar performance of nearly 96% correct verification is reported, thus making the approach general and very promising for large scale applications in the domain of handwritten document querying and writer verification.
机译:在本文中,我们表明可以使用本地特征(例如从草书笔迹分割中提取的字素)来执行作者识别和作者验证任务。因此,我们扩大了这两个任务的可能使用范围,到目前为止,这两个任务主要是根据脚本手写进行评估的。基于文本的信息检索模型用于作者识别阶段。这允许基于特征频率使用特定的特征空间。图像查询是投影在此功能空间中的手写文档。该方法在PSI_DataBase上获得95%的正确标识,在IAM_DataBase上达到86%的正确标识。然后在验证阶段分析检索到的作者假设。我们呼吁采用相互信息标准,以验证同一作者是否制作了两个文档。假设检验用于此目的。首先在PSI_DataBase上缩放提出的方法,然后在IAM_DataBase上对其进行评估。在这两个数据库上,都报告了接近96%的正确验证的相似性能,因此使该方法具有通用性,并且对于手写文档查询和作者验证领域的大规模应用非常有希望。

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