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A Knowledge-Rich Approach to Feature-Based Opinion Extraction from Product Reviews

机译:一种知识丰富的产品评论中的舆论提取方法

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Feature-based opinion extraction is a task related to information extraction, which consists of extracting structured opinions on features of some object from reviews or other subjective textual sources. Over the last years, this problem has been studied by some researchers, generally in an unsupervised, domain-independent manner. As opposed to that, in this work we propose a redefinition of the problem from a more practical point of view, and describe a domain-specific, resource-based opinion extraction system. We focus on the description and generation of those resources, and briefly report the extraction system architecture and a few initial experiments. The results suggest that domain-specific knowledge is a valuable resource in order to build precise opinion extraction systems.
机译:基于特征的意见提取是与信息提取有关的任务,其中包括提取关于来自评论或其他主观文本来源的某些对象的特征的结构化意见。在过去几年中,一些研究人员研究了这个问题,通常以无人监督,独立的方式。与此作品相比,在这项工作中,我们提出了从更实际的角度来重新定义问题,并描述了一个特定于域的资源的意见提取系统。我们专注于这些资源的描述和生成,并简要介绍提取系统架构和一些初步实验。结果表明,具体领域的知识是一个有价值的资源,以便建立精确的意见提取系统。

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