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A Novel Approach for Word Spotting Using Merge-Split Edit Distance

机译:一种使用合并分割编辑距离的单词发现新方法

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Edit distance matching has been used in literature for word spotting with characters taken as primitives. The recognition rate however, is limited by the segmentation inconsistencies of characters (broken or merged) caused by noisy images or distorted characters. In this paper, we have proposed a Merge-split edit distance which overcomes these segmentation problems by incorporating a multi-purpose merge cost function. The system is based on the extraction of words and characters in the text and then attributing each character with a set of features. Characters are matched by comparing their extracted feature sets using Dynamic Time Warping (DTW) while the words are matched by comparing the strings of characters using the proposed Merge-Split Edit distance algorithm. Evaluation of the method on 19th century historical document images exhibits extremely promising results.
机译:编辑距离匹配已在文献中用于将字符视为原始字符的单词查找。但是,识别率受噪声图像或字符失真导致的字符分割不连续(损坏或合并)的限制。在本文中,我们提出了合并分割编辑距离,通过合并多功能合并成本函数来克服这些分割问题。该系统基于文本中单词和字符的提取,然后为每个字符分配一组功能。通过使用动态时间规整(DTW)比较提取的特征集来匹配字符,而通过使用建议的合并拆分编辑距离算法比较字符字符串来匹配单词。在19世纪历史文献图像上对该方法的评估显示出非常有希望的结果。

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