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Feature-based Opinion Mining and Ranking

机译:基于特征的意见挖掘和排名

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摘要

The proliferation of blogs and social networks presents a new set of challenges and opportunities in the way information is searched and retrieved. Even though facts still play a very important role when information is sought on a topic, opinions have become increasingly important as well. Opinions expressed in blogs and social networks are playing an important role influencing everything from the products people buy to the presidential candidate they support. Thus, there is a need for a new type of search engine which will not only retrieve facts, but will also enable the retrieval of opinions. Such a search engine can be used in a number of diverse applications like product reviews to aggregating opinions on a political candidate or issue. Enterprises can also use such an engine to determine how users perceive their products and how they stand with respect to competition. This paper presents an algorithm which not only analyzes the overall sentiment of a document/review, but also identifies the semantic orientation of specific components of the review that lead to a particular sentiment. The algorithm is integrated in an opinion search engine which presents results to a query along with their overall tone and a summary of sentiments of the most important features.
机译:博客和社交网络的激增给信息的搜索和检索方式带来了一系列新的挑战和机遇。即使事实在寻求有关某个主题的信息时仍然起着非常重要的作用,但意见也变得越来越重要。博客和社交网络中表达的观点在影响从人们购买的产品到支持的总统候选人的一切方面都起着重要作用。因此,需要一种新型的搜索引擎,其不仅将检索事实,而且将能够检索意见。这样的搜索引擎可以用于许多不同的应用程序中,例如产品评论,以汇总对政治候选人或问题的看法。企业还可以使用这种引擎来确定用户如何看待他们的产品以及他们在竞争中的立场。本文提出了一种算法,该算法不仅可以分析文档/审阅的整体情感,而且可以识别导致特定情感的审阅特定组成部分的语义取向。该算法集成在意见搜索引擎中,该引擎将结果连同其总体语气和最重要特征的情感摘要一起呈现给查询。

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