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Employing Emotion Keywords to Improve Cross-Domain Sentiment Classification

机译:采用情感关键字来改善跨域情意分类

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Cross-domain classification is a challenging problem in the research of sentiment classification. In this study, we propose a novel approach to cross-domain sentiment classification by exploiting the classification knowledge from some emotion keywords. First, our approach uses some emotion keywords to extract the automatically-labeled samples with a high precision from the target area. Then, both the automatically-labeled samples from the target domain and the real labeled samples from the source domain are combined to be a new labeled data set. Third, all the labeled data and the unlabeled data in the target domain are used to perform cross-domain sentiment classification with a standard label-propagation algorithm. The empirical results demonstrate the effectiveness of our approach.
机译:跨域分类是对情绪分类的研究中有挑战性问题。在这项研究中,我们提出了一种通过从某些情感关键词中利用分类知识来提出一种新的跨域情感分类方法。首先,我们的方法使用一些情感关键字从目标区域中提取具有高精度的自动标记的样本。然后,来自目标域的自动标记的样本和来自源域的真实标记的样本被组合为新的标记数据集。第三,目标域中的所有标记数据和未标记的数据用于使用标准标签 - 传播算法执行跨域情绪分类。经验结果表明了我们方法的有效性。

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