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Writer identification approach based on bag of words with OBI features

机译:基于具有OBI功能的词袋的作家识别方法

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Handwriter identification aims to simplify the task of forensic experts by providing them with semi-automated tools in order to enable them to narrow down the search to determine the final identification of an unknown handwritten sample. An identification algorithm aims to produce a list of predicted writers of the unknown handwritten sample ranked in terms of confidence measure metrics for use by the forensic expert will make the final decision.Most existing handwriter identification systems use either statistical or model-based approaches. To further improve the performances this paper proposes to deploy a combination of both approaches using Oriented Basic Image features and the concept of graphemes codebook. To reduce the resulting high dimensionality of the feature vector a Kernel Principal Component Analysis has been used. To gauge the effectiveness of the proposed method a performance analysis, using IAM dataset for English handwriting and ICFHR 2012 dataset for Arabic handwriting, has been carried out. The results obtained achieved an accuracy of 96% thus demonstrating its superiority when compared against similar techniques.
机译:手写识别旨在通过为他们提供半自动化工具来简化法医专家的任务,从而使他们能够缩小搜索范围,以确定未知手写样本的最终识别。识别算法的目的是生成未知笔迹样本的预测作家列表,这些作家将按照置信度度量标准进行排名,供法医专家做出最终决定。大多数现有的笔迹识别系统都使用统计或基于模型的方法。为了进一步提高性能,本文提出使用定向基本图像功能和字素码本的概念来部署这两种方法的组合。为了减少特征向量的高维性,已使用内核主成分分析。为了评估所提出方法的有效性,已经进行了性能分析,使用了用于英语手写的IAM数据集和用于阿拉伯手写的ICFHR 2012数据集。所获得的结果达到了96%的精度,因此与同类技术相比具有优越性。

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