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A game-theoretical approach for finding optimal strategies in an intruder classification game

机译:在入侵者分类游戏中寻找最佳策略的博弈论方法

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We consider a game in which a strategic defender classifies an intruder as spy or spammer. The classification is based on the number of file server and mail server attacks observed during a fixed window. The spammer naively attacks (with a known distribution) his main target: the mail server. The spy strategically selects the number of attacks on his main target: the file server. The defender strategically selects his classification policy: a threshold on the number of file server attacks. We model the interaction of the two players (spy and defender) as a nonzero-sum game: The defender needs to balance missed detections and false alarms in his objective function, while the spy has a tradeoff between attacking the file server more aggressively and increasing the chances of getting caught. We give a characterization of the Nash equilibria in mixed strategies, and demonstrate how the Nash equilibria can be computed in polynomial time. Our characterization gives interesting and non-intuitive insights on the players' strategies at equilibrium: The defender uniformly randomizes between a set of thresholds that includes very large values. The strategy of the spy is a truncated version of the spammer's distribution. We present numerical simulations that validate and illustrate our theoretical results.
机译:我们考虑一种战略防御者将入侵者归类为间谍或垃圾邮件制造者的游戏。分类基于在固定窗口内观察到的文件服务器和邮件服务器攻击的数量。垃圾邮件发送者天真地攻击了(以已知的分布)他的主要目标:邮件服务器。间谍从策略上选择了对他的主要目标(文件服务器)的攻击次数。防御者从策略上选择其分类策略:文件服务器攻击次数的阈值。我们将两个玩家(间谍和防御者)的交互建模为一个非零和游戏:防御者需要在其目标函数中平衡错过的检测和错误警报,而间谍需要在更积极地攻击文件服务器与增加攻击之间进行权衡。被抓住的机会。我们给出了混合策略中纳什均衡的一个特征,并演示了如何在多项式时间内计算纳什均衡。我们的表征提供了有关玩家处于平衡状态时的策略的有趣且非直觉的见解:防守方在包括非常大值的一组阈值之间统一随机化。间谍的策略是垃圾邮件发送者分发的截短版本。我们提供了数值模拟来验证和说明我们的理论结果。

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