Performance bounds for multi-vehicle networks with local integrators
Abstract
In this work, we consider the problem of coordinating a collection of th-order integrator systems. The coordination is achieved through the novel serial-consensus design, which can be seen as a method for achieving a stable closed-loop while only using local relative measurements. Earlier work has shown that second-order serial consensus can stabilize a collection of double integrators with scalable performance conditions, independent of the number of agents and topology. In this paper, we generalize these performance results to an arbitrary order . The derived performance bound depends on the condition number, measured in the vector-induced maximum matrix norm, of a general diagonalizing matrix. We provide an exact characterization of how a minimal condition number can be achieved. Third-order serial consensus is illustrated through a case study of PI-controlled vehicular formation, where the added integrators are used to mitigate the effect of unmeasured load disturbances. The theoretical results are illustrated through examples.
Cite
@article{arxiv.2410.14525,
title = {Performance bounds for multi-vehicle networks with local integrators},
author = {Jonas Hansson and Emma Tegling},
journal= {arXiv preprint arXiv:2410.14525},
year = {2024}
}
Comments
(6 pages, 3 figures, Submitted to L-CSS and the 2025 American Control Conference)