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Multilingual aspect clustering for sentiment analysis

机译:多语言方面聚类用于情感分析

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摘要

In the last few years, there has been growing interest in aspect-based sentiment analysis, which deals with extracting, clustering, and rating the overall opinion about the features of the entity being evaluated. Techniques for aspect extraction can produce an undesirably large number of aspects with many of those relating to the same product feature. Hence, aspect clustering becomes necessary. Current solutions for aspect clustering are monolingual, but in many practical situations, reviews for a given entity are available in several languages, calling for multilingual integration. In this article, we address the novel task of multilingual aspect clustering, which aims at grouping semantically related aspects extracted from reviews written in several languages. Our method is unsupervised and relies on the contextual information of the aspects, which is represented by word embeddings. This representation allied with a suitable similarity measure allows clustering related aspects. Our experiments on two datasets with five languages each showed that our unsupervised clustering technique achieves results that outperform monolingual baselines adapted to work with multilingual data. We also show the benefits of the multilingual approach compared to using languages in isolation. (C) 2019 Elsevier B.V. All rights reserved.
机译:在过去的几年中,基于方面的情感分析越来越引起人们的兴趣,这种情感分析用于提取,聚类和对有关被评估实体的特征的整体观点进行评级。方面提取技术会产生不希望有的大量方面,其中许多方面与同一产品功能有关。因此,方面聚类变得必要。当前方面聚类的解决方案是单语言的,但是在许多实际情况下,给定实体的评论可用多种语言提供,要求进行多语言集成。在本文中,我们解决了多语言方面聚类的新任务,该任务旨在对从以多种语言撰写的评论中提取的语义相关方面进行分组。我们的方法是不受监督的,并且依赖于方面的上下文信息,该信息由词嵌入表示。与适当的相似性度量相关联的该表示允许对相关方面进行聚类。我们对两种使用五种语言的数据集进行的实验表明,我们的无监督聚类技术所获得的结果优于适用于多语言数据的单语言基线。与孤立地使用语言相比,我们还展示了多语言方法的好处。 (C)2019 Elsevier B.V.保留所有权利。

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