Title :
Input disturbance rejection in channel signal-to-noise ratio constrained feedback control
Author :
Rojas, A.J. ; Middleton, R.H. ; Freudenberg, J.S. ; Braslavsky, J.H.
Author_Institution :
ARC Centre of Excellence for Complex Dynamic Syst. & Control, Univ. of Newcastle, Newcastle, NSW
Abstract :
Communication channels impose a number of obstacles to feedback control. One recent line of work considers the problem of feedback stabilisation subject to a constraint on the channel signal-to-noise ratio (SNR). It has been shown for continuous-time systems that the optimal control problem of achieving the infimal SNR can be formulated as a linear quadratic Gaussian (LQG) control problem with weights chosen as in the loop transfer recovery (LTR) technique. The present paper extends this formulation to: discrete- time systems; communications over channels with memory; and input disturbance rejection. By using this formulation, we derive exact expressions for the linear time invariant (LTI) controller that achieves the infimal SNR under the effect of time-delay and additive coloured noise. We then quantify the infimal SNR required for both stabilisation and input disturbance rejection for a relative degree one, minimum phase plant and a memoryless Gaussian channel.
Keywords :
continuous time systems; delays; discrete time systems; feedback; invariance; linear quadratic Gaussian control; optimal control; signal processing; stability; telecommunication channels; additive coloured noise; channel signal-to-noise ratio; communication channels; constrained feedback control; continuous-time systems; discrete-time systems; feedback stabilisation; input disturbance rejection; linear quadratic Gaussian control; linear time invariant controller; loop transfer recovery technique; memoryless Gaussian channel; minimum phase plant; optimal control problem; time-delay; Additive noise; Colored noise; Communication channels; Communication system control; Control systems; Feedback control; Gaussian channels; Optimal control; Signal to noise ratio; Weight control;
Conference_Titel :
American Control Conference, 2008
Conference_Location :
Seattle, WA
Print_ISBN :
978-1-4244-2078-0
Electronic_ISBN :
0743-1619
DOI :
10.1109/ACC.2008.4586969