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Effect of delayed strokes on the recognition of online Farsi handwriting

机译:延迟笔画对在线波斯手写体识别的影响

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Online handwriting recognition, OHR, has gained a widespread use in everyday life. In some scripts such as Farsi and Arabic, additional strokes are written after the main stroke. These delayed strokes include dots and small signs. In this paper, the delayed strokes effect was studied from two points of views: sub-word modeling and lexicon reduction. The model of a subword was made of concatenating the main body model and the delayed strokes models. Hidden Markov model, HMM, was employed as a classifier. The delayed strokes of an input subword were additionally exploited to reduce the lexicon size. Our proposed method was tested on TMU-OFS dataset, including 1000 online Farsi subwords, and a recognition rate of 85.2% was achieved.
机译:在线手写识别OHR已在日常生活中得到广泛使用。在波斯语和阿拉伯语等某些脚本中,其他笔画在主笔画之后写出。这些延迟的笔划包括点和小符号。本文从两个角度研究了延迟笔画效果:子词建模和词典还原。子词的模型是由主体模型和延迟笔画模型串联而成的。隐藏的马尔可夫模型HMM被用作分类器。输入子词的延迟笔画还被利用来减小词典大小。我们的方法在TMU-OFS数据集上进行了测试,该数据集包含1000个在线波斯词,识别率达到85.2%。

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