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Detection of Valid Sentiment-Target Pairs in Online Product Reviews and News Media Articles

机译:在线产品评论和新闻媒体文章中有效情感目标对的检测

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This paper investigates the linking of sentiments to their respective targets, a sub-task of fine-grained sentiment analysis. Many different features have been proposed for this task, but often without a formal evaluation. We employ a recursive feature elimination approach to identify features that optimize predictive performance. Our experimental evaluation draws upon two corpora of product reviews and news articles annotated with sentiments and their targets. We introduce competitive baselines, outline the performance of the proposed approach, and report the most useful features for sentiment target linking. The results help to better understand how sentiment-target relations are expressed in the syntactic structure of natural language, and how this information can be used to build systems for fine-grained sentiment analysis.
机译:本文研究了情感与其各自目标之间的联系,这是细粒度情感分析的子任务。已经为这项任务提出了许多不同的功能,但是通常没有正式的评估。我们采用递归特征消除方法来识别可优化预测性能的特征。我们的实验评估借鉴了产品评论和新闻文章的两个语料库,其中注有情感及其目标。我们介绍了竞争基准,概述了所提出方法的性能,并报告了情感目标链接最有用的功能。结果有助于更好地理解自然语言的句法结构中如何表达情感-目标关系,以及如何使用此信息来构建用于细粒度情感分析的系统。

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