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Comparable Entity Mining from Comparative Questions

机译:比较问题中的可比实体挖掘

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Comparing one thing with another is a typical part of human decision making process. However, it is not always easy to know what to compare and what are the alternatives. In this paper, we present a novel way to automatically mine comparable entities from comparative questions that users posted online to address this difficulty. To ensure high precision and high recall, we develop a weakly supervised bootstrapping approach for comparative question identification and comparable entity extraction by leveraging a large collection of online question archive. The experimental results show our method achieves F1-measure of 82.5 percent in comparative question identification and 83.3 percent in comparable entity extraction. Both significantly outperform an existing state-of-the-art method. Additionally, our ranking results show highly relevance to user's comparison intents in web.
机译:将一件事与另一件事进行比较是人类决策过程的典型部分。但是,并不总是很容易知道要比较什么以及可以选择什么。在本文中,我们提出了一种新颖的方法,可以从用户在线发布的可比较问题中自动挖掘可比较实体,以解决此难题。为了确保高精度和高召回率,我们通过利用大量在线问题档案,开发了一种弱监督的引导方法,用于比较问题的识别和可比较的实体提取。实验结果表明,我们的方法在比较问题识别中的F1测度为82.5%,在可比较实体提取中的F1测度为83.3%。两者均明显优于现有的最新方法。此外,我们的排名结果与用户在网络中的比较意图高度相关。

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