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Linking News Sentiment to Microblogs: A Distributional Semantics Approach to Enhance Microblog Sentiment Classification

机译:将新闻情感链接到微博客:一种增强微博客情感分类的分布式语义方法

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Social media's popularity in society and research is gaining momentum and simultaneously increasing the importance of short textual content such as microblogs. Microblogs are affected by many factors including the news media, therefore, we exploit sentiments conveyed from news to detect and classify sentiment in microblogs. Given that texts can deal with the same entity but might not be vastly related when it comes to sentiment, it becomes necessary to introduce further measures ensuring the relatedness of texts while leveraging the contained sentiments. This paper describes ongoing research introducing distributional semantics to improve the exploitation of news-contained sentiment to enhance microblog sentiment classification.
机译:社交媒体在社会和研究中的流行正在获得发展,同时也增加了微博等短文本内容的重要性。微博受到包括新闻媒体在内的许多因素的影响,因此,我们利用新闻传达的情感来检测和分类微博中的情感。鉴于文本可以处理同一个实体,但在情感上可能没有很大的关联,因此有必要在确保所包含的情感的同时,采取进一步的措施来确保文本的相关性。本文介绍了正在进行的研究,这些研究引入了分布式语义,以改善对新闻内容的情感的利用,从而增强微博客的情感分类。

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