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Tibetan Microblog Emotional Analysis Based on Sequential Model in Online Social Platforms

机译:在线社交平台中基于顺序模型的藏族微博情感分析

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With the development of microblogs, selling and buying appear in online social platforms such as Sina Weibo and Wechat. Besides Mandarin, Tibetan language is also used to describe products and customers’ opinions. In this paper, we are interested in analyzing the emotions of Tibetan microblogs, which are helpful to understand opinions and product reviews for Tibetan customers. It is challenging since existing studies paid little attention to Tibetan language. Our key idea is to express Tibetan microblogs as vectors and then classify them. To express microblogs more fully, we select two kinds of features, which are sequential features and semantic features. In addition, our experimental results on the Sina Weibo dataset clearly demonstrate the effectiveness of feature selection and the efficiency of our classification method.
机译:随着微博的发展,买卖活动出现在新浪微博和微信等在线社交平台上。除普通话外,藏语还用于描述产品和客户的意见。在本文中,我们有兴趣分析藏族微博的情绪,这有助于了解藏族客户的意见和产品评论。由于现有研究很少关注藏语,因此具有挑战性。我们的主要思想是将藏语微博表达为载体,然后对其进行分类。为了更全面地表达微博,我们选择了两种功能,即顺序功能和语义功能。此外,我们在新浪微博数据集上的实验结果清楚地表明了特征选择的有效性和分类方法的有效性。

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