DocumentCode :
1151186
Title :
Data Transmission Over Networks for Estimation and Control
Author :
Gupta, Vijay ; Dana, Amir F. ; Hespanha, Joao P. ; Murray, Richard M. ; Hassibi, Babak
Author_Institution :
Dept. of Electr. Eng., Univ. of Notre Dame, Notre Dame, IN, USA
Volume :
54
Issue :
8
fYear :
2009
Firstpage :
1807
Lastpage :
1819
Abstract :
We consider the problem of controlling a linear time invariant process when the controller is located at a location remote from where the sensor measurements are being generated. The communication from the sensor to the controller is supported by a communication network with arbitrary topology composed of analog erasure channels. Using a separation principle, we prove that the optimal linear-quadratic-Gaussian (LQG) controller consists of an LQ optimal regulator along with an estimator that estimates the state of the process across the communication network. We then determine the optimal information processing strategy that should be followed by each node in the network so that the estimator is able to compute the best possible estimate in the minimum mean squared error sense. The algorithm is optimal for any packet-dropping process and at every time step, even though it is recursive and hence requires a constant amount of memory, processing and transmission at every node in the network per time step. For the case when the packet drop processes are memoryless and independent across links, we analyze the stability properties and the performance of the closed loop system. The algorithm is an attempt to escape the viewpoint of treating a network of communication links as a single end-to-end link with the probability of successful transmission determined by some measure of the reliability of the network.
Keywords :
closed loop systems; control engineering computing; least mean squares methods; linear quadratic Gaussian control; linear systems; probability; radio links; radio networks; stability; telecommunication network reliability; telecommunication network topology; wireless channels; LQ optimal regulator; arbitrary topology; closed loop system; communication network; data transmission over network; erasure channel; linear time invariant process control; minimum mean squared error method; network reliability; networked control system; optimal linear-quadratic-Gaussian controller; packet-dropping process; probability; remote location; stability; wireless links; Communication networks; Communication system control; Data communication; Information processing; Network topology; Optimal control; Process control; Regulators; State estimation; Time measurement; Analog erasure channels; control across communication channels; linear-quadratic-Gaussian (LQG); networked control; sensor networks;
fLanguage :
English
Journal_Title :
Automatic Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9286
Type :
jour
DOI :
10.1109/TAC.2009.2024567
Filename :
5175269
Link To Document :
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