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Segmentation of handwritten words using structured support vector machine

机译:使用结构化支持向量机的手写单词的分割

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摘要

Words and characters segmentation is a most indispensable and fundamental task for the handwritten script recognition. However, the complex language structures, deviation in pen breadth and slant in inscription make the feature extraction process very challenging. In this research, a binary quadratic process has been formulated for the word segmentation. It deliberates a co-relationship between the inter-word gap and intra-word gap. The structured support vector machine is used for the experiment. Experimental results of public datasets (i.e., ICDAR2009 and ICDAR2013) show state-of-the-art performance of the designed algorithm.
机译:单词和字符分割是手写脚本识别的最不可或缺的和基本任务。但是,复杂的语言结构,题字中的偏差和倾斜的偏差使得特征提取过程非常具有挑战性。在本研究中,已为单词分割制定了二进制二次过程。它刻意词语间差距和词内差距之间的共同关系。结构化支持向量机用于实验。公共数据集的实验结果(即,ICDAR2009和ICDAR2013)显示了设计算法的最先进的性能。

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