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A Fast Approach for Semantic Similar Short Texts Retrieval

机译:语义相似的短文本检索的一种快速方法

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Retrieving semantic similar short texts is a crucial issue to many applications, e.g., web search, ads matching, question-answer system, and so forth. Most of the traditional methods concentrate on how to improve the precision of the similarity measurement, while current real applications need to efficiently explore the top similar short texts semantically related to the query one. We address the efficiency issue in this paper by investigating the similarity strategies and incorporating them into the FAST framework (efficient FrAmework for semantic similar Short Texts retrieval). We conduct comprehensive performance evaluation on real-life data which shows that our proposed method outperforms the state-of-the-art techniques.
机译:检索语义相似的短文本是许多应用程序的关键问题,例如Web搜索,广告匹配,问题解答系统等。大多数传统方法都集中在如何提高相似度测量的精度上,而当前的实际应用程序需要有效地探索与查询语义相关的顶部相似短文本。我们通过研究相似性策略并将其纳入FAST框架(用于语义相似的短文本检索的有效FrAmework)来解决本文中的效率问题。我们对现实生活中的数据进行了全面的性能评估,这表明我们提出的方法优于最新技术。

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