English

D-Optimal Input Design for Nonlinear FIR-type Systems:A Dispersion-based Approach

Systems and Control 2017-03-27 v1

Abstract

Optimal input design is an important step of the identification process in order to reduce the model variance. In this work a D-optimal input design method for finite-impulse-response-type nonlinear systems is presented. The optimization of the determinant of the Fisher information matrix is expressed as a convex optimization problem. This problem is then solved using a dispersion-based optimization scheme, which is easy to implement and converges monotonically to the optimal solution. Without constraints, the optimal design cannot be realized as a time sequence. By imposing that the design should lie in the subspace described by a symmetric and non-overlapping set, a realizable design is found. A graph-based method is used in order to find a time sequence that realizes this optimal constrained design. These methods are illustrated on a numerical example of which the results are thoroughly discussed. Additionally the computational speed of the algorithm is compared with the general convex optimizer cvx.

Keywords

Cite

@article{arxiv.1703.08401,
  title  = {D-Optimal Input Design for Nonlinear FIR-type Systems:A Dispersion-based Approach},
  author = {Alexander De Cock and Michel Gevers and Johan Schoukens},
  journal= {arXiv preprint arXiv:1703.08401},
  year   = {2017}
}

Comments

15 pages, 11 figures

R2 v1 2026-06-22T18:55:53.477Z