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IIT-UHH at SemEval-2017 Task 3: Exploring Multiple Features for Community Question Answering and Implicit Dialogue Identification

机译:IIT-UHH在SemEval-2017上的任务3:探索社区问答和隐式对话识别的多种功能

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In this paper we present the system for Answer Selection and Ranking in Community Question Answering, which we build as part of our participation in SemEval-2017 Task 3. We develop a Support Vector Machine (SVM) based system that makes use of textual, domain-specific, word-embedding and topic-modeling features. In addition, we propose a novel method for dialogue chain identification in comment threads. Our primary submission won subtask C, outperforming other systems in all the primary evaluation metrics. We performed well in other English subtasks, ranking third in subtask A and eighth in subtask B. We also developed open source toolkits for all the three English subtasks by the name cQARank.
机译:在本文中,我们介绍了社区问题解答中的答案选择和排名系统,该系统是我们参与SemEval-2017任务3的一部分。我们开发了一种基于支持向量机(SVM)的系统,该系统使用文本,域特定的词嵌入和主题建模功能。另外,我们提出了一种在评论线程中进行对话链识别的新颖方法。我们的主要提交赢得了子任务C,在所有主要评估指标中均胜过其他系统。我们在其他英语子任务中表现出色,在子任务A中排名第三,在子任务B中排名第八。我们还为所有三个英语子任务开发了名为cQARank的开源工具包。

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