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On the Adversarial Robustness of Hypothesis Testing

机译:论假说检测的对抗鲁棒性

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摘要

In this paper, we investigate the adversarial robustness of hypothesis testing rules. In the considered model, after a sample is generated, it will be modified by an adversary before being observed by the decision maker. The decision maker needs to decide the underlying hypothesis that generates the sample from the adversarially-modified data. We formulate this problem as a minimax hypothesis testing problem, in which the goal of the adversary is to design attack strategy to maximize the error probability while the decision maker aims to design decision rules so as to minimize the error probability. We consider both hypothesis-aware case, in which the attacker knows the true underlying hypothesis, and hypothesis-unaware case, in which the attacker does not know the true underlying hypothesis. We solve this minimax problem and characterize the corresponding optimal strategies for both cases.
机译:在本文中,我们研究了假设检测规则的对抗鲁棒性。在所考虑的模型中,在产生样品之后,在决策者观察之前,将通过对手进行修改。决策者需要决定从对抗修改数据产生样本的潜在假设。我们将这个问题作为一个最小的假设检验问题,其中对手的目标是设计攻击策略,以最大化错误概率,而决策者旨在设计决策规则,以便最小化误差概率。我们考虑两个假设感知案例,其中攻击者知道真正的潜在的假设,以及假设 - 不识别的情况,其中攻击者不知道真正的潜在的假设。我们解决了这个极小的问题,并表征了两种情况的相应最佳策略。

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