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Giancarlo Ferrari-Trecate

1 accepted papers

2025

Contractive Dynamical Imitation Policies for Efficient Out-of-Sample Recovery

ICLR 2025poster

Imitation learning is a data-driven approach to learning policies from expert behavior, but it is prone to unreliable outcomes in out-of-sample (OOS) regions. While previous research relying on stable dynamical systems guarantees convergence to a desired state, it often overlooks transient behavior.…