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A Learning Algorithm for Question Type Classification

机译:问题类型分类的学习算法

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Question type (or answer type) classification is the task of determining the correct type of the answer expected to a given query. This is often done by defining or discovering syntactic patterns that represent the structure of typical queries of each type, and classify a given query according to which pattern they satisfy. In this paper, we combine the idea of using informer spans as patterns with our own part-of-speech hierarchy in order to propose both a new approach to pattern-based question type classification and a new way of discovering the informers to be used as patterns. We show experimentally that using our part-of-speech hierarchy greatly improves type classification results, and allows our system to learn valid new informers.
机译:问题类型(或应答类型)分类是确定预期给定查询的正确类型的任务。这通常通过定义或发现表示每种类型的典型查询结构的句法模式来完成,并根据它们满足的模式对给定查询进行分类。在本文中,我们将使用Informer Spans的想法与我们的语音层次结构的模式相结合,以便为基于模式的问题类型分类和发现旨在使用的新方法提出新方法模式。我们通过实验显示,使用我们的演讲层次结构大大提高了类型的分类结果,并允许我们的系统学习有效的新信息人员。

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