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A Sentiment Aggregation System based on an OWA Operator

机译:基于OWA算子的情感聚合系统

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User-Generated-Content (UGC) in the form of online reviews can be an invaluable source of information for both customers and businesses. Sentiment analysis and opinion mining tools and techniques have been proposed in the literature to extract knowledge from online reviews. Aspect-based opinion mining which has gained growing attention mainly has two tasks including aspect extraction and sentiment polarity detection. Once an aspect-based opinion mining task has been accomplished; a bag of sentiments will be achieved. In many cases, it is necessary to obtain an overall sentiment about a typical aspect. In this study, we have proposed a sentiment aggregation system based on weighted selective aggregated majority OWA (WSAM-OWA). WSAM-OWA considers both the majority and the degree of importance of information source in the process of aggregation. The proposed system exploits the helpfulness rating of reviews in determining the reliability and credibility of each sentiment. A case study was conducted to illustrates the usefulness of the proposed system. The results of this study demonstrated that the proposed sentiment aggregation system could be incorporated in opinion mining systems.
机译:在线评论形式的用户生成内容(UGC)对于客户和企业而言都是宝贵的信息来源。文献中已经提出了情感分析和观点挖掘工具及技术,以从在线评论中提取知识。基于方面的观点挖掘已经引起越来越多的关注,主要有两项任务,包括方面提取和情感极性检测。一旦完成了基于方面的观点挖掘任务;一袋情绪。在许多情况下,有必要获得有关典型方面的总体观点。在这项研究中,我们提出了一种基于加权选择性聚合多数OWA(WSAM-OWA)的情感聚合系统。 WSAM-OWA在汇总过程中同时考虑了信息源的大多数和重要性。所提出的系统利用评论的有用性等级来确定每个情感的可靠性和可信度。进行了案例研究,以说明所建议系统的实用性。这项研究的结果表明,所提出的情感聚合系统可以纳入意见挖掘系统。

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