Safety-Aware Performance Boosting for Constrained Nonlinear Systems

Fuente: arXiv
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Main Authors: Saccani, Danilo, Shen, Haoming, Furieri, Luca, Ferrari-Trecate, Giancarlo
Format: Preprint
Published: 2026
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author Saccani, Danilo
Shen, Haoming
Furieri, Luca
Ferrari-Trecate, Giancarlo
author_facet Saccani, Danilo
Shen, Haoming
Furieri, Luca
Ferrari-Trecate, Giancarlo
contents We study a control architecture for nonlinear constrained systems that integrates a performance-boosting (PB) controller with a scheduled Predictive Safety Filter (PSF). The PSF acts as a pre-stabilizing base controller that enforces state and input constraints. The PB controller, parameterized as a causal operator, influences the PSF in two ways: it proposes a performance input to be filtered, and it provides a scheduling signal to adjust the filter's Lyapunov-decrease rate. We prove two main results: (i) Stability by design: any controller adhering to this parametrization maintains closed-loop stability of the pre-stabilized system and inherits PSF safety. (ii) Trajectory-set expansion: the architecture strictly expands the set of safe, stable trajectories achievable by controllers combined with conventional PSFs, which rely on a pre-defined Lyapunov decrease rate to ensure stability. This scheduling allows the PB controller to safely execute complex behaviors, such as transient detours, that are provably unattainable by standard PSF formulations. We demonstrate this expanded capability on a constrained inverted pendulum task with a moving obstacle.
format Preprint
id arxiv_https___arxiv_org_abs_2603_19361
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Safety-Aware Performance Boosting for Constrained Nonlinear Systems
Saccani, Danilo
Shen, Haoming
Furieri, Luca
Ferrari-Trecate, Giancarlo
Systems and Control
We study a control architecture for nonlinear constrained systems that integrates a performance-boosting (PB) controller with a scheduled Predictive Safety Filter (PSF). The PSF acts as a pre-stabilizing base controller that enforces state and input constraints. The PB controller, parameterized as a causal operator, influences the PSF in two ways: it proposes a performance input to be filtered, and it provides a scheduling signal to adjust the filter's Lyapunov-decrease rate. We prove two main results: (i) Stability by design: any controller adhering to this parametrization maintains closed-loop stability of the pre-stabilized system and inherits PSF safety. (ii) Trajectory-set expansion: the architecture strictly expands the set of safe, stable trajectories achievable by controllers combined with conventional PSFs, which rely on a pre-defined Lyapunov decrease rate to ensure stability. This scheduling allows the PB controller to safely execute complex behaviors, such as transient detours, that are provably unattainable by standard PSF formulations. We demonstrate this expanded capability on a constrained inverted pendulum task with a moving obstacle.
title Safety-Aware Performance Boosting for Constrained Nonlinear Systems
topic Systems and Control
url https://arxiv.org/abs/2603.19361