通过实时数据融合改进点击欺诈检测

M. Kantardzic, C. Walgampaya, B. Wenerstrom, O. Lozitskiy, S. Higgins, D. King
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引用次数: 17

摘要

点击欺诈是一种网络犯罪,发生在每次点击付费的在线广告中,当一个人、自动脚本或计算机程序模仿网络浏览器的合法用户点击广告,目的是每次点击收取费用,而对广告链接的目标对象没有实际兴趣。大多数可用的商业解决方案只是点击欺诈报告系统,而不是实时点击欺诈检测和预防系统。本文提出了一种新的解决方案,该方案将基于不同来源收集的数据分析详细的用户点击活动。关于每次点击的更多信息可以更好地评估点击流量的质量。我们利用多源数据融合来合并客户端和服务器端活动。该解决方案集成在我们的CCFDP V1.0系统中,用于实时检测和预防点击欺诈。我们已经用来自真实广告活动的真实世界数据测试了该系统,结果表明,关于点击的额外实时信息提高了点击欺诈分析的质量。
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Improving Click Fraud Detection by Real Time Data Fusion
Click fraud is a type of Internet crime that occurs in pay per click online advertising when a person, automated script, or computer program imitates a legitimate user of a Web browser clicking on an ad, for the purpose of generating a charge per click without having actual interest in the target of the ad's link. Most of the available commercial solutions are just click fraud reporting systems, not real-time click fraud detection and prevention systems. A new solution is proposed in this paper that will analyze the detailed user click activities based on data collected form different sources. More information about each click enables better evaluation of the quality of click traffic. We utilize the multi source data fusion to merge client side and server side activities. Proposed solution is integrated in our CCFDP V1.0 system for a real-time detection and prevention of click fraud. We have tested the system with real world data from an actual ad campaign where the results show that additional real-time information about clicks improve the quality of click fraud analysis.
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