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 Uncertainty










MinimaxOptimalOnlineImitationLearningvia ReplayEstimation

Neural Information Processing Systems

In the tabular setting or with linear function approximation, our meta theorem shows that the performance gap incurred by ourapproachachievestheoptimal eO min(H3/2/Nexp,H/ p Nexp dependency, undersignificantly weakerassumptions compared topriorwork.


Towardspracticaldifferentiallyprivatecausalgraph discovery

Neural Information Processing Systems

The design of Priv-PC follows a novel paradigm called sieve-and-examine which uses a small amount of privacy budget to filter out "insignificant" queries, and leverages the remaining budget to obtain highly accurate answers for the "significant" queries.