On Event-Based Sampling for LQG-Optimal Control
Marcus Thelander Andr\'en, Bo Bernhardsson, Anton Cervin, Kristian, Soltesz

TL;DR
This paper develops an optimal event-based sampling scheme for LQG control that balances sampling rate and control performance, using a PDE-based approach and providing closed-form solutions for certain systems.
Contribution
It introduces a PDE-based method to optimize event-based sampling in LQG control, including closed-form solutions for multidimensional integrators and numerical methods for higher-order systems.
Findings
Optimal sampling scheme outperforms periodic sampling.
Closed-form solution for multidimensional integrators.
Numerical examples demonstrate performance improvements.
Abstract
We consider the problem of finding an event-based sampling scheme that optimizes the trade-off between average sampling rate and control performance in a linear-quadratic-Gaussian (LQG) control problem setting with output feedback. Our analysis is based on a recently presented sampled-data controller structure, which remains LQG-optimal for any choice of sampling scheme. We show that optimization of the sampling scheme is related to an elliptic convection-diffusion type partial differential equation over a domain with free boundary, a so called Stefan problem. A numerical method is presented to solve this problem for second order systems, and thus obtain an optimal sampling scheme. The method also directly generalizes to higher order systems, although with a higher computational cost. For the special case of multidimensional integrator systems, we present the optimal sampling scheme on…
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Taxonomy
TopicsAdvanced Control Systems Optimization · Control Systems and Identification · Markov Chains and Monte Carlo Methods
