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Naive exploration is optimal for online LQR,

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eess.SY 1

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2026 1

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The Fragility of Learning LQG Controllers

eess.SY · 2026-04-27 · unverdicted · novelty 8.0 · 2 refs

Derives an ε-local minimax excess-cost lower bound for learning LQG controllers from offline trajectories of a linear exploration policy, expressed via the Hessian of the LQG cost and inverse Fisher information, and instantiates it on fragile robust-control examples.

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  • The Fragility of Learning LQG Controllers eess.SY · 2026-04-27 · unverdicted · none · ref 6 · 2 links

    Derives an ε-local minimax excess-cost lower bound for learning LQG controllers from offline trajectories of a linear exploration policy, expressed via the Hessian of the LQG cost and inverse Fisher information, and instantiates it on fragile robust-control examples.