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首页> 外文期刊>International journal of e-business research >Review Spam Detection by Highlighting Potential Spammers and Diminishing Their Effect
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Review Spam Detection by Highlighting Potential Spammers and Diminishing Their Effect

机译:通过突出显示潜在的垃圾邮件发送者并减少其影响来审查垃圾邮件检测

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摘要

Nowadays, millions of products and services are available to the public online. Therefore, searching for the best products which meets individuals' expectations would be difficult due to the existence of too many alternative choices. One of the most reliable approaches to choose a product or service is to exploit the experience of people who have already tried them, and are expected to have reported their almost honest opinions about them. A reviewing system is a place where individuals share their experience on products and services. Individuals may read and/or write their reviews which may be neutral and professional or biased. Moreover, companies utilize reviewing systems to apply opinion mining techniques in order to improve their goods or services and may be to watch their competitors. However, the popularity of reviewing systems ignites this motivation for some people to try to influence viewers by entering their fake reviews to promote some products or defame some others. These spam reviews should be detected and eliminated to prevent misleading potential customers and unethically affect the market. Opinion mining should be adapted to locate and eliminate potential spam reviews. In this paper, some review spam detection approaches have been proposed and examined over a sample dataset. The proposed approaches consider patterns that existed in trends of reviews, as well as reviewers' behavior. The approaches depend on various strategies such as observing abnormal trends, detecting uncommon or suspicious behaviors, investigating group activities, among others. The reported test results revealed some promising outcome.
机译:如今,数以百万计的产品和服务可在线上向公众提供。因此,由于存在太多替代选择,很难找到满足个人期望的最佳产品。选择产品或服务的最可靠方法之一是,利用已经尝试过这些产品或服务的人们的经验,并期望他们报告了他们对它们几乎是诚实的看法。评论系统是个人共享产品和服务经验的地方。个人可以阅读和/或撰写中立,专业或有偏见的评论。此外,公司利用评论系统来应用意见挖掘技术,以改善其商品或服务,并可能会注意其竞争对手。但是,评论系统的流行激发了这种动机,使某些人试图通过输入虚假评论来推广某些产品或诽谤某些其他产品来影响观众。这些垃圾邮件评论应被发现并消除,以防止误导潜在客户并不道德地影响市场。应采用意见挖掘来查找和消除潜在的垃圾邮件评论。在本文中,已经提出了一些审查垃圾邮件检测方法,并对样本数据集进行了检查。所提出的方法考虑了评论趋势以及评论者行为中存在的模式。这些方法取决于各种策略,例如观察异常趋势,检测不常见或可疑的行为,调查小组活动等。报告的测试结果显示了一些有希望的结果。

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