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Geometric Reachability for Attitude Control Systems via Contraction Theory

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arxiv 2502.20878 v1 pith:7LIM54N2 submitted 2025-02-28 eess.SY cs.SY

Geometric Reachability for Attitude Control Systems via Contraction Theory

classification eess.SY cs.SY
keywords attitudesystemsboundscontrolcontractiondistancegeometricintroduce
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In this paper, we present a geometric framework for the reachability analysis of attitude control systems. We model the attitude dynamics on the product manifold $\mathrm{SO}(3) \times \mathbb{R}^3$ and introduce a novel parametrized family of Riemannian metrics on this space. Using contraction theory on manifolds, we establish reliable upper bounds on the Riemannian distance between nearby trajectories of the attitude control systems. By combining these trajectory bounds with numerical simulations, we provide a simulation-based algorithm to over-approximate the reachable sets of attitude systems. We show that the search for optimal metrics for distance bounds can be efficiently performed using semidefinite programming. Additionally, we introduce a practical and effective representation of these over-approximations on manifolds, enabling their integration with existing Euclidean tools and software. Numerical experiments validate the effectiveness of the proposed approach.

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