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Answer Presentation with Contextual Information: A Case Study Using Syntactic and Semantic Models

机译:用上下文信息回答演示:使用句法和语义模型的案例研究

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Answer presentation is a subtask in Question Answering that investigates the ways of presenting an acquired answer to the user in a format that is close to a human generated answer. In this research we explore models to retrieve additional, relevant, contextual information corresponding to a question and present an enriched answer by integrating the additional information as natural language. We investigate the role of Bag of Words (BoW) and Bag of Concepts (BoC) models to retrieve the relevant contextual information. The information source utilized to retrieve the information is a Linked Data resource, DBpedia, which encodes large amounts of knowledge corresponding to Wikipedia in a structured form as triples. The experiments utilizes the QALD question sets consisted of training and testing sets each containing 100 questions. The results from these experiments shows that pragmatic aspects, which are often neglected by BoW (syntactic models) and BoC (semantic models), form a critical part of contextual information selection.
机译:答案演示文稿是一个问题,该子任务回答,调查以靠近人类生成答案的格式向用户展示所获取的答案。在本研究中,我们探索模型来检索与问题相对应的其他,相关的,上下文信息,并通过将附加信息作为自然语言集成来提出丰富的答案。我们调查袋子(弓)和概念(BOC)模型的袋子(弓)和袋子的角色来检索相关的上下文信息。用于检索信息的信息源是链接数据资源DBPedia,其以结构形式与维基百科相对应的大量知识作为三元组。该实验利用QALD问题集由培训和测试组组成,每个都包含100个问题。来自这些实验的结果表明,经常被弓(句法模型)和BOC(语义模型)忽略的语用方面,形成了上下文信息选择的关键部分。

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