English

Equivalence of Control Systems with Linear Systems on Lie Groups and Homogeneous Spaces

Optimization and Control 2008-12-02 v1 Differential Geometry

Abstract

The aim of this paper is to prove that a control affine system on a manifold is equivalent by diffeomorphism to a linear system on a Lie group or a homogeneous space if and only the vector fields of the system are complete and generate a finite dimensional Lie algebra. A vector field on a connected Lie group is linear if its flow is a one parameter group of automorphisms. An affine vector field is obtained by adding a left invariant one. Its projection on a homogeneous space, whenever it exists, is still called affine. Affine vector fields on homogeneous spaces can be characterized by their Lie brackets with the projections of right invariant vector fields. A linear system on a homogeneous space is a system whose drift part is affine and whose controlled part is invariant. The main result is based on a general theorem on finite dimensional algebras generated by complete vector fields, closely related to a theorem of Palais, and which have its own interest. The present proof makes use of geometric control theory arguments.

Keywords

Cite

@article{arxiv.0812.0058,
  title  = {Equivalence of Control Systems with Linear Systems on Lie Groups and Homogeneous Spaces},
  author = {Philippe Jouan},
  journal= {arXiv preprint arXiv:0812.0058},
  year   = {2008}
}