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A Multi-View Sentiment Corpus

机译:多视图情绪语料库

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摘要

Sentiment Analysis is a broad task that involves the analysis of various aspect of the natural language text. However, most of the approaches in the state of the art usually investigate independently each aspect, i.e. Subjectivity Classification, Sentiment Polarity Classification, Emotion Recognition, Irony Detection. In this paper we present a Multi-View Sentiment Corpus (MVSC), which comprises 3000 English microblog posts related the movie domain. Three independent annotators manually labelled MVSC, following a broad annotation schema about different aspects that can be grasped from natural language text coming from social networks. The contribution is therefore a corpus that comprises five different views for each message, i.e. subjective/objective, sentiment polarity, implicit/explicit, irony, emotion. In order to allow a more detailed investigation on the human labelling behaviour, we provide the annotations of each human annotator involved.
机译:情绪分析是一项广泛的任务,涉及分析自然语言文本的各个方面。然而,本领域技术中的大多数方法通常是独立调查每个方面,即主观性分类,情感极性分类,情绪识别,讽刺检测。在本文中,我们提供了一种多视图情绪语料库(MVSC),包括3000个英语微博帖子相关的电影域。手动标记了MVSC的三个独立注释,这是一个关于不同方面的广泛注释模式,可以从来自社交网络的自然语言文本掌握。因此,贡献是一种语料库,其包括每个消息的五个不同视图,即主主观/目标,情感极性,隐含/明确,讽刺,情感。为了允许更详细地调查人类标签行为,我们提供所涉及的每个人的注释。

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