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Online Learning and Control Synthesis for Reachable Paths of Unknown Nonlinear Systems

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arxiv 2403.03413 v2 pith:7GX77MER submitted 2024-03-06 math.OC

classification math.OC
keywords dynamicscontrolmethodreachableconditionsknowledgenonlinearstate
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In this paper, we present a novel method to drive a nonlinear system to a desired state, with limited a priori knowledge of its dynamic model: local dynamics at a single point and the bounds on the rate of change of these dynamics. This method synthesizes control actions by utilizing locally learned dynamics along a trajectory, based on data available up to that moment, and known proxy dynamics, which can generate an underapproximation of the unknown system's true reachable set. An important benefit to the contributions of this paper is the lack of knowledge needed to execute the presented control method. We establish sufficient conditions to ensure that a controlled trajectory reaches a small neighborhood of any provably reachable state within a short time horizon, with precision dependent on the tunable parameters of these conditions.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Ignore Drift, Embrace Simplicity: Constrained Nonlinear Control through Driftless Approximation

    math.OC 2025-09 reject novelty 6.0 of 10

    A driftless linear approximation at the initial state, re-solved on progressively shorter intervals, is claimed to drive constrained nonlinear systems arbitrarily close to any reachable target; the proof rests on a fa...

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