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NetSpam: A Network-Based Spam Detection Framework for Reviews in Online Social Media

机译:NetSpam:用于在线社交媒体中评论的基于网络的垃圾邮件检测框架

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摘要

Nowadays, a big part of people rely on available content in social media in their decisions (e.g., reviews and feedback on a topic or product). The possibility that anybody can leave a review provides a golden opportunity for spammers to write spam reviews about products and services for different interests. Identifying these spammers and the spam content is a hot topic of research, and although a considerable number of studies have been done recently toward this end, but so far the methodologies put forth still barely detect spam reviews, and none of them show the importance of each extracted feature type. In this paper, we propose a novel framework, named NetSpam, which utilizes spam features for modeling review data sets as heterogeneous information networks to map spam detection procedure into a classification problem in such networks. Using the importance of spam features helps us to obtain better results in terms of different metrics experimented on real-world review data sets from Yelp and Amazon Web sites. The results show that NetSpam outperforms the existing methods and among four categories of features, including review-behavioral, user-behavioral, review-linguistic, and user-linguistic, the first type of features performs better than the other categories.
机译:如今,很大一部分人在决策中依赖社交媒体中的可用内容(例如,对主题或产品的评论和反馈)。任何人都可以留下评论的可能性为垃圾邮件制造者提供了千载难逢的机会,可以针对不同兴趣的产品和服务撰写垃圾邮件评论。识别这些垃圾邮件发送者和垃圾邮件内容是研究的热门话题,尽管最近为此目的进行了大量研究,但到目前为止,所提出的方法仍几乎无法检测到垃圾邮件评论,而且这些方法都没有显示出重要性。每个提取的要素类型。在本文中,我们提出了一个名为NetSpam的新颖框架,该框架利用垃圾邮件功能将审阅数据集建模为异构信息网络,以将垃圾邮件检测过程映射到此类网络中的分类问题。利用垃圾邮件功能的重要性,可以帮助我们根据Yelp和Amazon网站上真实评论数据集上试验的不同指标获得更好的结果。结果表明,NetSpam的性能优于现有方法,并且在四类功能(包括评论行为,用户行为,评论语言和用户语言)中表现优于第一类。

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