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Resource Construction and Evaluation for Indirect Opinion Mining of Drug Reviews

机译:药品评论间接意见挖掘的资源建设与评估

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摘要

Opinion mining is a well-known problem in natural language processing that has attracted increasing attention in recent years. Existing approaches are mainly limited to the identification of direct opinions and are mostly dedicated to explicit opinions. However, in some domains such as medical, the opinions about an entity are not usually expressed by opinion words directly, but they are expressed indirectly by describing the effect of that entity on other ones. Therefore, ignoring indirect opinions can lead to the loss of valuable information and noticeable decline in overall accuracy of opinion mining systems. In this paper, we first introduce the task of indirect opinion mining. Then, we present a novel approach to construct a knowledge base of indirect opinions, called OpinionKB, which aims to be a resource for automatically classifying people’s opinions about drugs. Using our approach, we have extracted 896 quadruples of indirect opinions at a precision of 88.08 percent. Furthermore, experiments on drug reviews demonstrate that our approach can achieve 85.25 percent precision in polarity detection task, and outperforms the state-of-the-art opinion mining methods. We also build a corpus of indirect opinions about drugs, which can be used as a basis for supervised indirect opinion mining. The proposed approach for corpus construction achieves the precision of 88.42 percent.
机译:意见挖掘是自然语言处理中的一个众所周知的问题,近年来已引起越来越多的关注。现有方法主要限于直接意见的识别,并且主要致力于明确意见。但是,在某些领域(例如医学领域),通常不直接通过见解词来表达有关实体的观点,而是通过描述该实体对其他实体的影响来间接表达它们。因此,忽略间接意见会导致有价值信息的丢失以及意见挖掘系统的整体准确性显着下降。在本文中,我们首先介绍了间接意见挖掘的任务。然后,我们提出一种新颖的方法来构建间接意见知识库,称为OpinionKB,其目的是为人们对毒品的意见进行自动分类提供资源。使用我们的方法,我们以89.08%的精度提取了896倍于四倍的间接意见。此外,有关药物审查的实验表明,我们的方法可以在极性检测任务中达到85.25%的精度,并且优于最新的意见挖掘方法。我们还建立了有关毒品的间接意见库,可以用作监督性间接意见挖掘的基础。所提出的语料库构建方法可达到88.42%的精度。

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  • 期刊名称 other
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  • 年(卷),期 -1(10),5
  • 年度 -1
  • 页码 e0124993
  • 总页数 25
  • 原文格式 PDF
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  • 入库时间 2022-08-21 11:15:44

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