Strategic Representation
Vineet Nair, Ganesh Ghalme, Inbal Talgam-Cohen, Nir Rosenfeld
摘要
Humans have come to rely on machines for reducing excessive information to manageable representations. But this reliance can be abused-strategic machines might craft representations that manipulate their users. How can a user make good choices based on strategic representations? We formalize this as a learning problem, and pursue algorithms for decision-making that are robust to manipulation. In our main setting of interest, the system represents attributes of an item to the user, who then decides whether or not to consume. We model this interaction through the lens of strategic classification (Hardt et al. 2016) , reversed : the user, who learns, plays first; and the system, which responds, plays second. The system must respond with representations that reveal 'nothing but the truth' but need not reveal the entire truth. Thus, the user faces the problem of learning set functions under strategic subset selection, which presents distinct algorithmic and statistical challenges. Our main result is a learning algorithm that minimizes error despite strategic representations, and our theoretical analysis sheds light on the trade-off between learning effort and susceptibility to manipulation. * Vineet Nair is now at Google Research, India. † This work was done when Ganesh was a post-doctoral fellow at Technion.
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引用它的顶会 Paper4
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它引用的顶会 Paper11
- Strategic Classification is Causal Modeling in DisguiseJohn Miller, Smitha Milli, Moritz HardtICML 2020 · 被引用 127 次
- Who Leads and Who Follows in Strategic Classification?Tijana Zrnic, Eric Mazumdar, S. Shankar Sastry, Michael I. JordanNeurIPS 2021 · 被引用 76 次
- Strategic Classification in the DarkGanesh Ghalme, Vineet Nair, Itay Eilat, Inbal Talgam-Cohen 等ICML 2021 · 被引用 70 次
- Strategic Classification Made PracticalSagi Levanon, Nir RosenfeldICML 2021 · 被引用 68 次
- Alternative Microfoundations for Strategic ClassificationMeena Jagadeesan, Celestine Mendler-Dünner, Moritz HardtICML 2021 · 被引用 55 次
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