DocumentCode
2301178
Title
Timescale analysis for wavelength-routed optical burst-switched (WR-OBS) networks
Author
Düser, M. ; de Miguel, I. ; Bayvel, P. ; Wischik, D.
Author_Institution
Dept. of Electron. & Electr. Eng., Univ. Coll. London, UK
fYear
2002
fDate
17-22 Mar 2002
Firstpage
222
Lastpage
224
Abstract
The relationship of three timing parameters in the WR-OBS network architecture has been identified and investigated, to quantify the limits on the operation of a dynamic network. An adaptive burst assembler at the network edge provides an accurate estimation of the maximum edge delay whilst preventing buffer overflow, depending only on the mean and variance of incoming traffic. The round-trip time defines the achievable wavelength re-use under dynamic network operation, which could be as large as 20 for the example shown. The processing and queueing latency in the network control node links all three parameters and imposes a lower bound to the edge delay for a given number of edge routers. The unlimited burst size (UBS) scheme not only overcomes the main limitation of many OBS approaches-excessive burst loss for high network loads, but also reduces latency with increasing load, potentially ensuring adaptive network operation over a wide range of loads.
Keywords
optical fibre networks; telecommunication network routing; telecommunication switching; telecommunication traffic; WR-OBS network architecture; adaptive network operation; buffer overflow; burst loss; dynamic network; dynamic network operation; edge routers; high network loads; limited burst size scheme; maximum edge delay; network control node links; network edge; queueing latency; round-trip time; timescale analysis; timing parameters; wavelength re-use; wavelength-routed optical burst-switched networks; Bandwidth; Optical fiber networks; Optical losses; Probability; Propagation delay; Statistics; Telecommunication traffic; Time division multiplexing; Timing; Traffic control;
fLanguage
English
Publisher
ieee
Conference_Titel
Optical Fiber Communication Conference and Exhibit, 2002. OFC 2002
Print_ISBN
1-55752-701-6
Type
conf
DOI
10.1109/OFC.2002.1036320
Filename
1036320
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