推文中阿拉伯语情感文本的语义角色标注

Ferial Senator, Hanane Boutouta, Abdelaziz Lakhfif, Chahrazed Mediani
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引用次数: 0

摘要

我们提出了一个带有语义角色标签和情感注释的阿拉伯语语料库,以改进阿拉伯语NLP任务。情感分析和语义角色标注涉及许多应用领域,是NLP任务的一大挑战。据我们所知,文献中很少有研究试图将语义角色标记与情感分析相结合。然而,与英语相比,阿拉伯语缺乏相关的数据集和工具。在这项研究中,我们使用支持基于框架语义的注释的半自动工具构建了一个包含3000条阿拉伯语推文的语料库,这些推文带有情感类别及其相关参数的注释。这一正在进行的努力是为阿拉伯语提供大规模注释语料库的第一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semantic Role Labeling of Arabic Emotional Text in Tweets
We propose an Arabic corpus annotated with semantic role labels and emotion to improve Arabic NLP tasks.Emotion analysis and semantic role labeling concern many areas of applications and represent a big challenge for NLP tasks. To the best of our knowledge,few studies in the literature have attempted to integrate semantic role labeling with emotion analysis. However, Arabic language suffers from a lack of such a relevant datasets and tools compared to English. In this research, we build a corpus of 3000 Arabic tweets annotated with emotion categories and their related arguments using a semi-automatic tool that supports Frame semantics based annotation. This ongoing effort represents a first stepto providinga sizeable annotated corpus for the Arabic Language.
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