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Evolution of Multiple States Machines for Recognition of Online Cursive Handwriting

机译:在线草书手写识别的多状态机的发展

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Recognition of cursive handwritings such as Persian script is a hard task as there is no fixed segmentation and simultaneous segmentation and recognition is required. This paper presents a novel comparison method for such tasks which is based on a Multiple States Machine to perform robust elastic comparison of small segments with high speed through generation and maintenance of a set of concurrent possible hypotheses. The approach is implemented on Persian (Farsi) language using a typical feature set and a specific tailored genetic algorithm and the recognition and computation time is compared with dynamic programming comparison approach.
机译:识别波斯文字等草书笔迹是一项艰巨的任务,因为没有固定的细分,并且需要同时进行细分和识别。本文提出了一种针对此类任务的新颖比较方法,该方法基于多状态机,可以通过生成和维护一组并发的可能假设,以高速对小片段进行鲁棒的弹性比较。该方法是使用典型特征集和特定的量身定制的遗传算法在波斯(波斯语)语言上实现的,并且将识别和计算时间与动态编程比较方法进行了比较。

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