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Extracting Product Features from Online Consumer Reviews

机译:从在线消费者评论中提取产品功能

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The exponential growth of user-generated content in online environment calls for techniques that can help to make sense of the content. Despite of a host of research on online consumer reviews, there is still a great demand for research to improve the techniques for feature extraction. To this end, we proposed extraction methods based on detailed categorization of review features. By taking into account of the characteristics and patterns of different types of features, the proposed methods not only identify new features but also filter irrelevant features. The results of an experiment demonstrate that our proposed methods outperform the state-of-the-art techniques.
机译:在线环境中用户生成的内容呈指数增长,因此需要可以帮助理解内容的技术。尽管对在线消费者评论进行了大量研究,但是仍然存在对改进特征提取技术的研究的巨大需求。为此,我们提出了基于评论特征的详细分类的提取方法。通过考虑不同类型特征的特征和模式,提出的方法不仅可以识别新特征,还可以过滤不相关的特征。实验结果表明,我们提出的方法优于最新技术。

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