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Text Independent Writer Identification for Bengali Script

机译:孟加拉语脚本的文本独立作者识别

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Automatic identification of an individual based on his/her handwriting characteristics is an important forensic tool. In a computational forensic scenario, presence of huge amount of text/information in a questioned document cannot be always ensured. Also, compromising in terms of systems reliability under such situation is not desirable. We here propose a system to encounter such adverse situation in the context of Bengali script. Experiments with discrete directional feature and gradient feature are reported here, along with Support Vector Machine (SVM) as classifier. We got promising results of 95.19% writer identification accuracy at first top choice and 99.03% when considering first three top choices.
机译:根据他/她的笔迹特征自动识别个人是重要的取证工具。在计算取证的情况下,不能始终确保在有问题的文档中存在大量文本/信息。同样,在这种情况下损害系统可靠性也是不希望的。我们在这里提出一种在孟加拉语文字环境下遇到这种不利情况的系统。此处报告了具有离散方向特征和梯度特征的实验,以及作为分类器的支持向量机(SVM)。我们获得了有前途的首选结果,即在首选中的作者识别准确率达到95.19%,在考虑到首选中的前三项时达到了99.03%。

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