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Titel:

Learning Dynamics from Infrequent Output Measurements for Uncertainty-Aware Optimal Control

Dokumenttyp:
Konferenzbeitrag
Autor(en):
Lefringhausen, Robert; Springer, Theodor; Hirche, Sandra
Abstract:
Reliable optimal control is challenging when the dynamics of a nonlinear system are unknown and only infrequent, noisy output measurements are available. This work addresses this setting of limited sensing by formulating a Bayesian prior over the continuous-time dynamics and latent state trajectory in state-space form and updating it through a targeted Metropolis–Hastings sampler equipped with a numerical ODE integrator. The resulting posterior samples are used to formulate a scenario-based opti...     »
Stichworte:
meteor
Kongress- / Buchtitel:
2026 IFAC World Congress
Konferenzort:
Busan
Datum der Konferenz:
23.08.2026 - 28.08.2026
Jahr:
2026
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