State-Constrained Control of Discrete-Time Nonlinear Systems via Constraint Lifting

Fuente: arXiv
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Main Authors: Delgado, Jhon Manuel Portella, Goel, Ankit
Format: Preprint
Published: 2026
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author Delgado, Jhon Manuel Portella
Goel, Ankit
author_facet Delgado, Jhon Manuel Portella
Goel, Ankit
contents This paper presents a constraint-enforcing control framework for a class of discrete-time strict-feedback nonlinear systems. The objective is to guarantee closed-loop stability while ensuring forward invariance of a prescribed safe set defined by state constraints. The proposed approach transforms the constrained control problem into an equivalent unconstrained one through smooth constraint-lifting mappings constructed using strictly increasing sigmoid functions. Controller synthesis is then performed in the lifted coordinates, enabling recursive backstepping design while preserving the admissibility of the constrained states. Conditions on the controller gains are derived to guarantee both asymptotic stability of the closed-loop system and forward invariance of the admissible domain of the lifting functions. The analysis also establishes a conditional deadbeat property for the second backstepping step once the system trajectory enters a region in which the lifting-domain admissibility conditions are satisfied. Numerical simulations of a constrained double-integrator system demonstrate the effectiveness of the proposed method in enforcing state constraints while tracking a reference command.
format Preprint
id arxiv_https___arxiv_org_abs_2604_24989
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle State-Constrained Control of Discrete-Time Nonlinear Systems via Constraint Lifting
Delgado, Jhon Manuel Portella
Goel, Ankit
Optimization and Control
This paper presents a constraint-enforcing control framework for a class of discrete-time strict-feedback nonlinear systems. The objective is to guarantee closed-loop stability while ensuring forward invariance of a prescribed safe set defined by state constraints. The proposed approach transforms the constrained control problem into an equivalent unconstrained one through smooth constraint-lifting mappings constructed using strictly increasing sigmoid functions. Controller synthesis is then performed in the lifted coordinates, enabling recursive backstepping design while preserving the admissibility of the constrained states. Conditions on the controller gains are derived to guarantee both asymptotic stability of the closed-loop system and forward invariance of the admissible domain of the lifting functions. The analysis also establishes a conditional deadbeat property for the second backstepping step once the system trajectory enters a region in which the lifting-domain admissibility conditions are satisfied. Numerical simulations of a constrained double-integrator system demonstrate the effectiveness of the proposed method in enforcing state constraints while tracking a reference command.
title State-Constrained Control of Discrete-Time Nonlinear Systems via Constraint Lifting
topic Optimization and Control
url https://arxiv.org/abs/2604.24989