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A Probabilistic Logic of Cyber Deception

机译:网络欺骗的概率逻辑

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摘要

Malicious attackers often scan nodes in a network in order to identify vulnerabilities that they may exploit as they traverse the network. In this paper, we propose that the system generates a mix of true and false answers in response to scan requests. If the attacker believes that all scan results are true, then he will be on a wrong path. If he believes some scan results are faked, he would have to expend time and effort in order to separate fact from fiction. We propose a probabilistic logic of deception and show that various computations are NP-hard. We model the attacker's state and show the effects of faked scan results. We then show how the defender can generate fake scan results in different states that minimize the damage the attacker can produce. We develop a Naive-PLD algorithm and a Fast-PLD heuristic algorithm for the defender to use and show experimentally that the latter performs well in a fraction of the run time of the former. We ran detailed experiments to assess the performance of these algorithms and further show that by running Fast-PLD off-line and storing the results, we can very efficiently answer run-time scan requests.
机译:恶意攻击者经常扫描网络中的节点,以识别他们在遍历网络时可能利用的漏洞。在本文中,我们建议系统响应扫描请求而生成正确答案和错误答案的混合体。如果攻击者认为所有扫描结果都是正确的,那么他将走错路。如果他认为某些扫描结果是伪造的,则他将不得不花费时间和精力来将事实与虚构分开。我们提出了欺骗的概率逻辑,并证明了各种计算都是NP难的。我们对攻击者的状态进行建模,并显示伪造的扫描结果的影响。然后,我们展示了防御者如何在不同状态下生成伪造的扫描结果,从而最大程度地减少了攻击者可能造成的损害。我们开发了Naive-PLD算法和Fast-PLD启发式算法供防御者使用,并通过实验证明了后者在前者运行时间的一小部分中表现良好。我们进行了详细的实验以评估这些算法的性能,并进一步表明,通过离线运行Fast-PLD并存储结果,我们可以非常有效地回答运行时扫描请求。

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