Description of Stability for Two and Three-Dimensional Linear Time-Invariant Systems Based on Curvature and Torsion
Abstract
This paper focuses on using curvature and torsion to describe the stability of linear time-invariant system. We prove that for a two-dimensional system , (i) if there exists an initial value, such that zero is not the limit of curvature of trajectory as , then the zero solution of the system is stable; (ii) if there exists an initial value, such that the limit of curvature of trajectory is infinity as , then the zero solution of the system is asymptotically stable. For a three-dimensional system, (i) if there exists a measurable set whose Lebesgue measure is greater than zero, such that for all initial values in this set, zero is not the limit of curvature of trajectory as , then the zero solution of the system is stable; (ii) if the coefficient matrix is invertible, and there exists a measurable set whose Lebesgue measure is greater than zero, such that for all initial values in this set, the limit of curvature of trajectory is infinity as , then the zero solution of the system is asymptotically stable; (iii) if there exists a measurable set whose Lebesgue measure is greater than zero, such that for all initial values in this set, zero is not the limit of torsion of trajectory as , then the zero solution of the system is asymptotically stable.
Cite
@article{arxiv.1808.00290,
title = {Description of Stability for Two and Three-Dimensional Linear Time-Invariant Systems Based on Curvature and Torsion},
author = {Yuxin Wang and Huafei Sun and Yang Song and Yueqi Cao and Shiqiang Zhang},
journal= {arXiv preprint arXiv:1808.00290},
year = {2018}
}
Comments
24 pages, 5 figures, 7 tables; v2: corrected typos in Corollary 5.6, added references