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Detection of Internet robots using a Bayesian approach

机译:使用贝叶斯方法检测互联网机器人

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A large part of Web traffic on e-commerce sites is generated not by human users but by Internet robots: search engine crawlers, shopping bots, hacking bots, etc. In practice, not all robots, especially the malicious ones, disclose their identities to a Web server and thus there is a need to develop methods for their detection and identification. This paper proposes the application of a Bayesian approach to robot detection based on characteristics of user sessions. The method is applied to the Web traffic from a real e-commerce site. Results show that the classification model based on the cluster analysis with the Ward's method and the weighted Euclidean metric is very effective in robot detection, even obtaining accuracy of above 90%.
机译:电子商务网站上的大量网络流量不是由人类用户而成的,而是通过互联网机器人:搜索引擎爬行者,购物机器人,黑客机器人等实际上,并非所有机器人,尤其是恶意,都透露了他们的身份因此,Web服务器,因此需要开发用于其检测和识别的方法。本文提出了一种基于用户会话特征的贝叶斯方法在机器人检测中的应用。该方法应用于来自真正的电子商务站点的Web流量。结果表明,基于沃德方法和加权欧几里德度量的基于集群分析的分类模型在机器人检测中非常有效,甚至获得高于90%的精度。

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