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It Takes Three to Tango: Triangulation Approach to Answer Ranking in Community Question Answering

机译:探戈需要三个:三角测量方法来回答社区问题的排名

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We address the problem of answering new questions in community forums, by selecting suitable answers to already asked questions. We approach the task as an answer ranking problem, adopting a pairwise neural network architecture that selects which of two competing answers is better. We focus on the utility of the three types of similarities occurring in the triangle formed by the original question, the related question, and an answer to the related comment, which we call relevance, relatedness, and appropriateness. Our proposed neural network models the interactions among all input components using syntactic and semantic embeddings, lexical matching, and domain-specific features. It achieves state-of-the-art results, showing that the three similarities are important and need to be modeled together. Our experiments demonstrate that all feature types are relevant, but the most important ones are the lexical similarity features, the domain-specific features, and the syntactic and semantic embeddings.
机译:通过选择已提问的合适答案,我们解决了社区论坛回答新问题的问题。我们将任务作为答案排名问题接近,采用一对竞争答案中哪一个更好的成对神经网络架构。我们专注于由原始问题,相关问题和相关评论的三角形形成的三种类型相似之处发生的实用性,以及相关评论的答案,我们呼叫相关性,相关性和适当性。我们所提出的神经网络使用句法和语义嵌入,词汇匹配和特定于域特征来模拟所有输入组件之间的交互。它实现了最先进的结果,表明三种相似之处是重要的,并且需要在一起建模。我们的实验表明,所有特征类型都是相关的,但最重要的是词汇相似性,域特定功能和语法和语义嵌入。

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