DocumentCode
841461
Title
Robust rate control for integrated services packet networks
Author
Blanchini, Franco ; Cigno, Renato Lo ; Tempo, Roberto
Author_Institution
Dipt. di Matematica e Inf., Udine Univ., Italy
Volume
10
Issue
5
fYear
2002
fDate
10/1/2002 12:00:00 AM
Firstpage
644
Lastpage
652
Abstract
Research on congestion-control algorithms has traditionally focused more on performance than on robustness of the closed-loop system to changes in network conditions. As the performance of the control loop is strictly connected with the quality of service, these systems are natural candidates to be approached by the optimal control theory. Unfortunately, this approach may fail in the presence of transmission delay variations, which are unavoidable in telecommunication systems. In this paper, we first show the fragility of optimal controllers and demonstrate their instability when the control delay is not known exactly. Then we propose a robust control algorithm based on a classical proportional integral derivative scheme which does not suffer from this fragility phenomenon. Its stability versus the control delay variations, as well as versus sources that transmit less than their computed share, is studied with Nyquist analysis. The control algorithm is implemented within a simulator in the framework of the asynchronous transfer mode (ATM) ABR transfer capability. The final part of the paper shows some selected results assessing the performance of the control algorithm in a realistic network environment. ABR was chosen as an example, but the control studied here can be applied in any data network to obtain a robust and reliable congestion-control scheme.
Keywords
asynchronous transfer mode; data communication; delays; optimal control; packet switching; proportional control; telecommunication congestion control; telecommunication networks; ATM ABR transfer; Nyquist analysis; asynchronous transfer mode; closed-loop system; congestion-control algorithms; control delay; data network; integrated services packet networks; network conditions; optimal control theory; optimal controllers; proportional integral derivative; quality of service; robust control algorithm; robust rate control; simulator; stability; telecommunication systems; transmission delay variations; Asynchronous transfer mode; Control systems; Delay; Intserv networks; Optimal control; Quality of service; Robust control; Robustness; Stability analysis; Telecommunication control;
fLanguage
English
Journal_Title
Networking, IEEE/ACM Transactions on
Publisher
ieee
ISSN
1063-6692
Type
jour
DOI
10.1109/TNET.2002.803896
Filename
1041071
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