PAC-Bayesian Certificates for Quadratic Closed-Loop Control

By Domagoj Herceg · Paper · eess.SY

PAC-Bayesian bounds provide finite-sample guarantees for data-dependent randomized predictors, but applying them to learning-based control is difficult because the natural objective is a quadratic trajectory cost. Such losses are unbounded, non-Lipschitz , and lead to response-de

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