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Questioning the Question - Addressing the Answerability of Questions in Community Question-Answering

机译:质疑问题 - 解决社区质询回答中的问题的应答性

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In this paper, we investigate question quality among questions posted in Yahoo! Answers to assess what factors contribute to the goodness of a question and determine if we can flag poor quality questions. Using human assessments of whether a question is good or bad and extracted textual features from the questions, we built an SVM classifier that performed with relatively good classification accuracy for both good and bad questions. We then enhanced the performance of this classifier by using additional human assessments of question type as well as additional question features to first separate questions by type and then classify them. This two-step classifier improved the performance of the original classifier in identifying Type II errors and suggests that our model presents a novel approach for identifying bad questions with implications for query revision and routing.
机译:在本文中,我们调查雅虎发布的问题之间的质量问题答案评估什么因素有助于提出问题的善良,并确定我们是否可以标记质量差的问题。使用人为评估问题是良好的或坏的,提取文本功能,我们建立了一个SVM分类器,对良好和坏问题进行了相对良好的分类准确性。然后,我们通过使用对问题类型的额外的人类评估以及额外的问题来提高该分类器的性能,以及通过类型的第一个单独的问题,然后对它们进行分类。这种两步分类器改进了原始分类器的性能在识别II型错误时,并表明我们的模型呈现了一种新的方法,可以识别疑似查询修订和路由的含义。

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