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Artin Tajdini

4 accepted papers

2025

Learning to Incentivize in Repeated Principal-Agent Problems with Adversarial Agent Arrivals

ICML 2025poster

We initiate the study of a repeated principal-agent problem over a finite horizon $T$, where a principal sequentially interacts with $K\geq 2$ types of agents arriving in an *adversarial* order. At each round, the principal strategically chooses one of the $N$ arms to incentivize for an arriving age…

Cited by 0SourcePDFScholar
2024

Corruption-Robust Linear Bandits: Minimax Optimality and Gap-Dependent Misspecification

NeurIPS 2024poster

In linear bandits, how can a learner effectively learn when facing corrupted rewards? While significant work has explored this question, a holistic understanding across different adversarial models and corruption measures is lacking, as is a full characterization of the minimax regret bounds. In thi…

Cited by 1SourcePDFScholar