Reducing Adversarially Robust Learning to Non-Robust PAC Learning
Omar Montasser, Steve Hanneke, Nati Srebro
2020年份
35被引次数
17顶会引用
摘要
We study the problem of reducing adversarially robust learning to standard PAC learning, i.e. the complexity of learning adversarially robust predictors using access to only a black-box non-robust learner. We give a reduction that can robustly learn any hypothesis class using any non-robust learner for . The number of calls to depends logarithmically on the number of allowed adversarial perturbations per example, and we give a lower bound showing this is unavoidable.
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引用它的顶会 Paper17
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