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Argumentative Insights from an Opinion Classification Task on a French Corpus

机译:来自法国语料库的意见分类任务的辩论性见解

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摘要

This work deals with sentiment analysis on a corpus of French product reviews. We first introduce the corpus and how it was built. Then we present the results of two classification tasks that aimed at automatically detecting positive, negative and neutral reviews by using various machine learning techniques. We focus on methods that make use of feature selection techniques. This is done in order to facilitate the interpretation of the models produced so as to get some insights on the relative importance of linguistic items for marking sentiment and opinion. We develop this topic by looking at the output of the selection processes on various classes of lexical items and providing an explanation of the selection in argumentative terms.
机译:这项工作涉及对法国产品评论集的情绪分析。我们首先介绍语料库及其构建方式。然后,我们介绍了两个分类任务的结果,这些任务旨在通过使用各种机器学习技术自动检测正面,负面和中立的评论。我们专注于利用特征选择技术的方法。这样做是为了便于解释所产生的模型,以便对语言项目对于标记情感和观点的相对重要性有一些见解。我们通过查看各种类别的词法项的选择过程的输出并以辩论性的术语对选择进行解释,来开发此主题。

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  • 来源
  • 会议地点 Kanagawa(JP)
  • 作者单位

    Universite Paris 5, UMR S775, Paris, France;

    Laboratoire Parole et Langage, Aix Marseille Universite, Marseille, France ,Nanyang Technological University, Singapore, Singapore;

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  • 原文格式 PDF
  • 正文语种 eng
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