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MOUNA: Mining Opinions to Unveil Neglected Arguments

机译:Mouna:挖掘忽视争论的意见

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A query topic can be subjective involving a variety of opinions, judgments, arguments, and many other debatable aspects. Typically, search engines process queries independently from the nature of their topics using a relevance-based retrieval strategy. Hence, search results about subjective topics are often biased towards a specific view point or version. In this demo, we shall present MOUNA, a novel approach for opinion diversification. Given a query on a subjective topic, MOUNA ranks search results based on three scores: (1) relevance of documents, (2) semantic diversity to avoid redundancy and capture the different arguments used to discuss the query topic, and (3) sentiment diversity to cover a balanced set of documents having positive, negative, and neutral sentiments about the query topic. Moreover, MOUNA enhances the representation of search results with a summary of the different arguments and sentiments related to the query topic. Thus, the user can navigate through the results and explore the links between them. We provide an example scenario in this demonstration to illustrate the inadequacy of relevance-based techniques for searching subjective topics and highlight the innovative aspects of MOUNA.
机译:查询主题可以是主观涉及各种意见,判断,论点以及许多其他可扩张论。通常,搜索引擎使用基于相关的检索策略独立地从其主题的性质进行处理查询。因此,关于主题主题的搜索结果通常偏向特定的视点或版本。在这个演示中,我们将展示Mouna,这是一种新的意见多样化方法。给定关于主题主题的查询,Mouna基于三个分数排名搜索结果:(1)文档的相关性,(2)语义多样性以避免冗余,捕获用于讨论查询主题的不同参数,以及(3)情绪多样性涵盖关于查询主题的正,负数和中立情绪的平衡集文件。此外,Mouna通过与查询主题相关的不同参数和情绪的摘要增强了搜索结果的表示。因此,用户可以浏览结果并探索它们之间的链接。我们在本演示中提供了一个示例场景,以说明基于相关性的技术的不足,用于搜索主观主题,并突出显示Mouna的创新方面。

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