DocumentCode :
404415
Title :
Controlling Internet queue dynamics using recursively identified models
Author :
Gunnarsson, Fredrik ; Gunnarsson, Fredrik ; Gustafsson, Fredrik
Author_Institution :
Dept. of EE, Linkopings Univ., Linkoping, Sweden
Volume :
1
fYear :
2003
fDate :
9-12 Dec. 2003
Firstpage :
593
Abstract :
Data traffic on the Internet of today is controlled by a non-linear controller (TCP) at each sender node, which increases packet transmission rate each time an acknowledgment is received in due time, and decreases otherwise. The routers may co-operate with TCP by deliberately dropping packets, so called early drops. The idea is to decrease packet arrival rate before the queue becomes full and hard drops of packets are necessary. State of the art is to compute the probability of an early drop as a static function of the (filtered) queue length. We propose to use an auto-regressive model for the oscillative behavior of the queue length that can be observed in practice. With this model, the queue length can be predicted and a dynamic algorithm for computing the early drop probability can be used. We suggest a very simple modification of existing algorithms, where a short-time prediction is used instead of the current queue value, and demonstrate using ns-2 simulations that the overall throughput increases.
Keywords :
Internet; autoregressive processes; network routing; nonlinear control systems; telecommunication traffic; transport protocols; Internet queue dynamics control; auto regressive model; data traffic; early drop probability; nonlinear controller; packet arrival rate; packet transmission rate; queue length; recursively identified models; sender node; state of the art; static function; Communication system control; Communication system traffic control; Computational modeling; Feedback; Heuristic algorithms; Internet; Nonlinear control systems; Predictive models; Throughput; Traffic control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Decision and Control, 2003. Proceedings. 42nd IEEE Conference on
ISSN :
0191-2216
Print_ISBN :
0-7803-7924-1
Type :
conf
DOI :
10.1109/CDC.2003.1272628
Filename :
1272628
Link To Document :
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