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An artificial immune system for offline isolated handwritten arabic character recognition

机译:用于离线的人工免疫系统孤立的手写阿拉伯字符识别

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AbstractCharacter recognition plays an important role in the modern world. In recent years, character recognition systems for different languages has gain importance. The recognition of Arabic writing is still an important challenge due to its cursive nature and great topological variability. The Artificial Immune System is a supervised learning technique that embodies the concepts of natural immunity to cope with complex classification problems. The objective of this research is to investigate the applicability of an Artificial Immune System in Offline Isolated Handwritten Arabic Characters. The developed system is composed of three main modules: preprocessing, feature extraction and recognition. The system was trained and tested with ten-fold cross-validation technique on an original realistic database that we built from the well-known IFN/ENIT benchmark. Parameter tuning was performed with a grid-search algorithm with leave-one-out cross-validation. The obtained results of the proposed system are promising with a classification rate of 93.25% and often outperform most well-known classifiers from Scikit Learn Library.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>字符识别在现代世界中发挥着重要作用。近年来,不同语言的字符识别系统具有重要性。由于其草书性质和卓越的拓扑变异性,对阿拉伯语写作的认可仍然是一个重要的挑战。人工免疫系统是一种监督学习技术,体现了应对复杂分类问题的自然免疫概念。本研究的目的是调查人工免疫系统在离线上孤立的手写阿拉伯特征的适用性。开发系统由三个主要模块组成:预处理,特征提取和识别。系统培训并测试了在众所周知的IFN / ENIT基准测试的原始现实数据库上以十倍的交叉验证技术进行培训和测试。使用具有休假交叉验证的网格搜索算法执行参数调整。所获得的系统的结果具有93.25%的分类率,往往优于来自Scikit学习图书馆的最着名的分类器。 ]]>

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