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A Robust Algorithm for Predicting Attacks Using Collaborative Security Logs

机译:一种强大的算法,用于使用协作安全日志预测攻击

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As networks become ubiquitous in our daily lives, users rely more on networks for exchanging data and communication. However, numerous new and sophisticated attacks that endanger security of users have been reported. In practice, blacklisting illicit sources has been a fundamental defense strategy in recent years. In this paper, we propose a predictor that is based on the observations from a centralized log-sharing infrastructure. Our observations include the direct relation between attackers and victims, victim similarities, and attacker correlations. We compile a customized blacklist for each Dshield.org contributor using a weighted function of direct and indirect relations between victims and attackers. This list not only offers a significantly higher prediction ratio, but also includes source addresses with potentially higher threats. We evaluate our predictor using two months of malicious activities acquired from Dshield.org. The experimental results demonstrate a significant improvement over previous algorithms.
机译:随着网络在我们的日常生活中变得普遍存在,用户更多地依赖于交换数据和通信的网络。但是,报告了危害用户安全性的许多新的和复杂的攻击。在实践中,近年来,黑名单的非法消息来源是一项基本防御战略。在本文中,我们提出了一种基于来自集中式日志共享基础设施的观察的预测因子。我们的观察包括攻击者和受害者,受害者相似性和攻击者相关之间的直接关系。我们使用受害者和攻击者之间的直接和间接关系的加权函数编译每个DShield.org贡献者的自定义黑名单。此列表不仅提供了更高的预测率,还包括具有潜在更高威胁的源地址。我们使用从DShield.org获取的两个月的恶意活动评估我们的预测指标。实验结果表明,对先前的算法显着改善。

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