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Word-Graph-Based Handwriting Keyword Spotting of Out-of-Vocabulary Queries

机译:基于词图的笔迹外查询手写关键词发现

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Thanks to the use of lexical and syntactic information, Word Graphs (WG) have shown to provide a competitive Precision-Recall performance, along with fast lookup times, in comparison to other techniques used for Key-Word Spotting (KWS) in handwritten text images. However, a problem of WG approaches is that they assign a null score to any keyword that was not part of the training data, i.e. Out-of-Vocabulary (OOV) keywords, whereas other techniques are able to estimate a reasonable score even for these kind of keywords. We present a smoothing technique which estimates the score of an OOV keyword based on the scores of similar keywords. This makes the WG-based KWS as flexible as other techniques with the benefit of having much faster lookup times.
机译:由于使用了词法和句法信息,与手写文本图像中用于关键字发现(KWS)的其他技术相比,单词图(WG)已显示出具有竞争力的精确召回性能以及快速的查找时间。 。但是,WG方法的问题在于,它们为不属于训练数据一部分的任何关键字(即词汇外(OOV)关键字)分配零分,而其他技术甚至可以为这些关键字估算合理的分数一种关键字。我们提出一种平滑技术,该技术根据相似关键字的得分来估算OOV关键字的得分。这使基于WG的KWS与其他技术一样灵活,并具有更快的查找时间的优势。

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