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Review tree: An unsupervised method to autogenerate visual summary of online reviews

机译:评论树:一种自动生成在线评论视觉摘要的无监督方法

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in an online review and rating portal, summarization of the text review is important as it provides a detailed glimpse of what is working and what is not. Usual techniques of text summarization do not work well in this domain due to unstructured nature of such reviews. In the case when the reviews are about services that do not have well-defined entity and aspects, doing aspect based opinion analysis is also a challenge. This paper is about summarization of online review in such domains. Additionally, extractive summarization sometimes fails to represent all the important topics due to its constraint of using sentences as information units. Such summaries also do not depict linkages between topics and building that is left to the reader. In our work, we have used sentiment analysis to extract the subjective part of the reviews and then adopted an unsupervised graph theoretical approach to extract the key phrases. Finally, semantic similarities between these key phrases are calculated to discover the interlinkages and a tree like review summary is generated using standard graph theory techniques.
机译:在在线审阅和评级门户网站中,对文本审阅进行汇总非常重要,因为它可以详细了解有效的方法和无效的方法。由于此类评论的非结构化性质,通常的文本摘要技术在此领域无法很好地发挥作用。在评论涉及没有明确定义的实体和方面的服务的情况下,进行基于方面的意见分析也是一个挑战。本文是关于此类领域中在线评论的概述。此外,提取摘要有时由于无法将句子用作信息单元而无法代表所有重要主题。这样的摘要也没有描述留给读者的主题与建筑物之间的联系。在我们的工作中,我们使用情感分析来提取评论的主观部分,然后采用无监督的图论方法来提取关键短语。最后,计算这些关键短语之间的语义相似度以发现相互联系,并使用标准图论技术生成类似评论摘要的树。

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