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Feature-based opinion extraction: A practical, domain-adaptable approach

机译:基于特征的意见提取:一种实用的,领域可适应的方法

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摘要

Nowadays, user-generated content has become a centerpiece in Web 2.0. People do not only navigate the web, but they also contribute content to the Internet. Among other things, they write their thoughts and opinions on many topics in forums, social networks, blogs and other websites. These opinions constitute a valuable resource for businesses, governments and consumers. In the last years, some researchers have proposed automated systems, mostly domain-independent ones, to extract structured representations of opinions contained in those texts. In this work, we propose a domain-adaptable approach to the feature-based opinion extraction task. The results confirm that domain-specific knowledge is a useful resource in order to build precise opinion extraction systems.
机译:如今,用户生成的内容已成为Web 2.0的核心。人们不仅浏览网络,而且还向Internet贡献内容。除其他外,他们在论坛,社交网络,博客和其他网站上的许多主题上发表自己的想法和见解。这些意见为企业,政府和消费者提供了宝贵的资源。近年来,一些研究人员提出了一种自动化系统,主要是与领域无关的自动化系统,以提取这些文本中所包含观点的结构化表示形式。在这项工作中,我们提出了一种基于领域的方法来进行基于特征的意见提取任务。结果证实,特定领域的知识是建立精确的意见提取系统的有用资源。

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