Comparison of Different Preprocessing and Feature Extraction Methods for Offline Recognition of Handwritten ArabicWords

H. E. Abed, V. Märgner
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引用次数: 67

Abstract

Preprocessing and feature extraction are very important steps in automatic cursive handwritten word recognition. Based on an offline recognition system for Arabic handwritten words which uses a semi-continuous 1-dimensional Hidden Markov Model recognizer, different preprocessing combined with different feature sets are presented. The dependencies of the feature sets from preprocessing steps are discussed and their performances are compared using the IFN/ENIT-database of handwritten Arabic words. As the lower and upper baseline of each word are part of the ground truth of the database, the dependency of the feature set from the accuracy of the estimated baseline is evaluated.
手写体阿拉伯词离线识别的预处理和特征提取方法比较
预处理和特征提取是草书手写词自动识别的重要环节。基于半连续一维隐马尔可夫模型识别器的阿拉伯手写体离线识别系统,提出了结合不同特征集的预处理方法。讨论了预处理步骤中特征集的依赖关系,并使用手写阿拉伯语单词的IFN/ enit数据库对其性能进行了比较。由于每个词的下基线和上基线是数据库的基础真值的一部分,因此评估特征集与估计基线准确性的依赖关系。
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