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Sentiment Analysis Using Common-Sense and Context Information

机译:使用常识和上下文信息进行情感分析

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摘要

Sentiment analysis research has been increasing tremendously in recent times due to the wide range of business and social applications. Sentiment analysis from unstructured natural language text has recently received considerable attention from the research community. In this paper, we propose a novel sentiment analysis model based on common-sense knowledge extracted from ConceptNet based ontology and context information. ConceptNet based ontology is used to determine the domain specific concepts which in turn produced the domain specific important features. Further, the polarities of the extracted concepts are determined using the contextual polarity lexicon which we developed by considering the context information of a word. Finally, semantic orientations of domain specific features of the review document are aggregated based on the importance of a feature with respect to the domain. The importance of the feature is determined by the depth of the feature in the ontology. Experimental results show the effectiveness of the proposed methods.
机译:近年来,由于商业和社交应用的广泛范围,情感分析研究得到了极大的发展。最近,来自非结构化自然语言文本的情感分析受到了研究界的广泛关注。在本文中,我们提出了一种基于从本体和上下文信息中提取的来自ConceptNet的常识知识的新颖情感分析模型。基于ConceptNet的本体用于确定领域特定的概念,这些概念又产生了领域特定的重要功能。此外,提取的概念的极性是使用我们通过考虑单词的上下文信息而开发的上下文极性词典确定的。最终,基于特征相对于领域的重要性,汇总审阅文档的领域特定特征的语义取向。特征的重要性取决于本体中特征的深度。实验结果表明了所提方法的有效性。

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