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Using automated individual white-list to protect web digital identities

机译:使用自动的个人白名单来保护Web数字身份

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摘要

The theft attacks of web digital identities, e.g., phishing, and pharming, could result in severe loss to users and vendors, and even hold users back from using online services, e-business services, especially. In this paper, we propose an approach, referred to as automated individual white-list (AIWL), to protect user's web digital identities. AIWL leverages a Naive Bayesian classifier to automatically maintain an individual white-list of a user. If the user tries to submit his or her account information to a web site that does not match the white-list, AIWL will alert the user of the possible attack. Furthermore, AIWL keeps track of the features of login pages (e.g., IP addresses, document object model (DOM) paths of input widgets) in the individual white-list. By checking the legitimacy of these features, AIWL can efficiently defend users against hard attacks, especially pharming, and even dynamic pharming. Our experimental results and user studies show that AIWL is an efficient tool for protecting web digital identities.
机译:网络数字身份的盗窃攻击(例如网络钓鱼和欺骗)可能会给用户和供应商造成严重损失,甚至使用户无法使用在线服务,尤其是电子商务服务。在本文中,我们提出了一种称为自动个人白名单(AIWL)的方法来保护用户的Web数字身份。 AIWL利用朴素贝叶斯分类器自动维护用户的个人白名单。如果用户尝试将其帐户信息提交到与白名单不匹配的网站,则AIWL将警告用户可能的攻击。此外,AIWL会跟踪各个白名单中登录页面的功能(例如,IP地址,输入小部件的文档对象模型(DOM)路径)。通过检查这些功能的合法性,AIWL可以有效地保护用户免受硬攻击,尤其是域名攻击,甚至是动态域名攻击。我们的实验结果和用户研究表明,AIWL是保护Web数字身份的有效工具。

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