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Multilingual Subjectivity: Are More Languages Better?

机译:多语种主体性:更好的语言更好吗?

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While subjectivity related research in other languages has increased, most of the work focuses on single languages. This paper explores the integration of features originating from multiple languages into a machine learning approach to subjectivity analysis, and aims to show that this enriched feature set provides for more effective modeling for the source as well as the target languages. We show not only that we are able to achieve over 75% macro accuracy in all of the six languages we experiment with, but also that by using features drawn from multiple languages we can construct high-precision meta-classifiers with a precision of over 83%.
机译:虽然具有其他语言的主观性相关的研究已经增加,但大多数工作都侧重于单语言。本文探讨了源自多种语言的特征的集成到主观性分析的机器学习方法中,旨在表明,该富集的功能集提供了更有效的源和目标语言的建模。我们不仅展示我们在我们实验的所有六种语言中获得超过75%的宏观准确性,还可以通过使用多种语言绘制的功能来构建高精度的元分类器,精度超过83 %。

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