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Sentiment classification of long newspaper articles based on automatically generated thesaurus with various semantic relationships

机译:基于具有各种语义关系的自动同义词库的长篇报纸文章的情感分类

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The paper describes a new approach for sentiment classification of long texts from newspapers using an automatically generated thesaurus. An important part of the proposed approach is specialized thesaurus creation and computation of term's sentiment polarities based on relationships between terms. The approach's efficiency has been proved on a corpus of articles about American immigrants. The experiments showed that the automatically created thesaurus provides better classification quality than manual ones, and generally for this task our approach outperforms existing ones.
机译:本文介绍了一种使用自动生成的词库对报纸中长篇文章进行情感分类的新方法。所提出的方法的重要部分是基于术语之间的关系进行专门的同义词库创建和术语情感极性的计算。该方法的效率已在有关美国移民的大量文章中得到证明。实验表明,与手动创建的同义词库相比,自动创建的同义词库提供了更好的分类质量,通常,对于该任务,我们的方法要优于现有方法。

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