DocumentCode :
1090031
Title :
Feedback Stabilization Over Signal-to-Noise Ratio Constrained Channels
Author :
Braslavsky, Julio H. ; Middleton, Richard H. ; Freudenberg, James S.
Author_Institution :
Univ. of Newcastle, Callaghan
Volume :
52
Issue :
8
fYear :
2007
Firstpage :
1391
Lastpage :
1403
Abstract :
There has recently been significant interest in feedback stabilization problems with communication constraints including constraints on the available data rate. Signal-to-noise ratio (SNR) constraints are one way in which data-rate limits arise, and are the focus of this paper. In both continuous and discrete-time settings, we show that there are limitations on the ability to stabilize an unstable plant over a SNR constrained channel using finite-dimensional linear time invariant (LTI) feedback. In the case of state feedback, or output feedback with a delay-free, minimum phase plant, these limitations in fact match precisely those that might have been inferred by considering the associated ideal Shannon capacity data rate over the same channel. In the case of LTI output feedback, additional limitations are shown to apply if the plant is nonminimum phase. In this case, we show that for a continuous-time nonminimum phase plant, a periodic linear time varying feedback scheme with fast sampling may be used to recover the original SNR requirement at the cost of robustness properties. The proposed framework inherently captures channel noise effects in a simple formulation suited to conventional LTI control performance and robustness analysis, and has potential to handle time delays and bandwidth constraints in a variety of control over communication links problems.
Keywords :
continuous time systems; delays; discrete time systems; feedback; robust control; telecommunication channels; telecommunication control; telecommunication links; SNR constrained channel; Shannon capacity data rate; communication constraints; communication links; continuous time system; continuous-time nonminimum phase plant; discrete time system; feedback stabilization; finite-dimensional linear time invariant feedback; signal-to-noise ratio; time delays; Communication system control; Costs; Delay; Noise robustness; Output feedback; Performance analysis; Robust control; Sampling methods; Signal to noise ratio; State feedback; Communication channels; control systems; feedback communication; information rates; linear-quadratic-Gaussian control; networked control systems; signal-to-noise ratio (SNR);
fLanguage :
English
Journal_Title :
Automatic Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9286
Type :
jour
DOI :
10.1109/TAC.2007.902739
Filename :
4287133
Link To Document :
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