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On the Sample Complexity of Stabilizing LTI Systems on a Single Trajectory

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arxiv 2202.07187 v1 pith:LW6A4SLY submitted 2022-02-15 math.OC cs.SYeess.SY

classification math.OCcs.SYeess.SY
keywords complexitysamplesinglesystemsystemstrajectoryalgorithmdynamical
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abstract

Stabilizing an unknown dynamical system is one of the central problems in control theory. In this paper, we study the sample complexity of the learn-to-stabilize problem in Linear Time-Invariant (LTI) systems on a single trajectory. Current state-of-the-art approaches require a sample complexity linear in $n$, the state dimension, which incurs a state norm that blows up exponentially in $n$. We propose a novel algorithm based on spectral decomposition that only needs to learn "a small part" of the dynamical matrix acting on its unstable subspace. We show that, under proper assumptions, our algorithm stabilizes an LTI system on a single trajectory with $\tilde{O}(k)$ samples, where $k$ is the instability index of the system. This represents the first sub-linear sample complexity result for the stabilization of LTI systems under the regime when $k = o(n)$.

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  1. Canonical Bayesian Linear System Identification

    stat.ML 2025-07 conditional novelty 6.0 of 10

    Bayesian inference for LTI systems in canonical state-space forms resolves parameter non-identifiability, yields well-behaved posteriors, and restores Bernstein-von Mises asymptotics.

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