Sequential Word Spotting In Historical Handwritten Documents

Document Analysis Systems(2014)

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摘要
In this work we present a handwritten word spotting approach that takes advantage of the a priori known order of appearance of the query words. Given an ordered sequence of query word instances, the proposed approach performs a sequence alignment with the words in the target collection. Although the alignment is quite sparse, i.e. the number of words in the database is higher than the query set, the improvement in the overall performance is sensitively higher than isolated word spotting. As application dataset, we use a collection of handwritten marriage licenses taking advantage of the ordered index pages of family names.
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关键词
indexes,shape,handwriting recognition,semantics,hidden markov models,database,feature extraction
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