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Beihang-MSRA at SemEval-2017 Task 3: A Ranking System with Neural Matching Features for Community Question Answering

机译:Beihang-MSRA在SemEval-2017上的任务3:具有神经匹配功能的排名系统,用于社区问答

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This paper presents the system in SemEval-2017 Task 3, Community Question Answering (CQA). We develop a ranking system that is capable of capturing semantic relations between text pairs with little word overlap. In addition to traditional NLP features, we introduce several neural network based matching features which enable our system to measure text similarity beyond lexicons. Our system significantly outperforms baseline methods and holds the second place in Subtask A and the fifth place in Subtask B, which demonstrates its efficacy on answer selection and question retrieval.
机译:本文在SemEval-2017任务3“社区问题解答(CQA)”中介绍了该系统。我们开发了一种排名系统,该系统能够捕获几乎没有单词重叠的文本对之间的语义关系。除了传统的NLP功能外,我们还引入了几种基于神经网络的匹配功能,这些功能使我们的系统能够测量词典之外的文本相似度。我们的系统明显优于基准方法,在子任务A中排名第二,在子任务B中排名第五,这证明了它在答案选择和问题检索上的功效。

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