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A novel approach for Persian/Arabic intelligent word recognition

机译:一种新的波斯/阿拉伯语智能词识别方法

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In this paper we present a novel approach for offline Persian/Arabic intelligent word recognition based on the fast and customized dynamic time warping method. The main focus of paper is on Persian language but considering the common character sets and writing styles in both Persian and Arabic, our system could be easily extended to Arabic language. Recent advances in this area show that many systems for intelligent word recognition use either Neural Network or Hidden Markov Model that suffer from low recognition rate, sensitivity to noises or wide range of parameters that reduce system performance. The experimental results are provided by using a benchmark dataset of Persian handwritten words of 380 individual writers and it shows the proposed algorithm has the recognition rate above 90%.
机译:本文基于快速和定制的动态时间扭曲方法,提出了一种用于离线波斯/阿拉伯语智能字识别的新方法。纸张的主要焦点是波斯语,但考虑到普遍存在的共同角色集和写作风格,我们的系统可以很容易地扩展到阿拉伯语。该领域的最新进展表明,许多智能字识别系统使用神经网络或隐藏的马尔可夫模型,这些模型遭受了低识别率,对噪声的敏感性或广泛的参数减少了系统性能。通过使用380个单独作家的波斯手写单词的基准数据集提供实验结果,它表示所提出的算法的识别率高于90%。

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