Title :
A Quantitative Measure for Telecommunications Networks Topology Design
Author :
Maxemchuk, Nicholas F. ; Ouveysi, Iradj ; Zukerman, Moshe
Author_Institution :
Dept. of Electr. Eng., Columbia Univ., New York, NY, USA
Abstract :
This paper proposes a new measure for network performance evaluation called topology lifetime. The measure provides insight into which one of a set of topologies is likely to last the longest before more capacity must be installed. The lifetime measure is not single valued, but considers growth as a function of a set of demand shifts (perturbation). One network may be better able to support a uniform growth in the traffic, while another may support more growth when unexpected shifts in the load occur. The ability of a network to support unexpected changes in load is becoming more important because of: 1) current practices for installing fiber optics cables; 2) recent advances in dense wavelength division multiplexing; and 3) the increasing popularity of the Internet. The lifetime measure is applied to several topologies; a dual ring, a chordal ring, a Manhattan Street network and an hierarchical network. We also apply the measure to a realistic US IP Backbone network. In this paper, our objective is to show how to apply the measure to different networks, and to explain certain implications for comparisons between networks. We expect this measure to be useful both in the construction of new networks and in selecting between new links that may be added to an existing network.
Keywords :
IP networks; Internet; optical cables; optical fibre networks; telecommunication network topology; telecommunication traffic; wavelength division multiplexing; Internet; Manhattan Street network; US IP backbone network; chordal ring; demand shifts; dense wavelength division multiplexing; dual ring; fiber optics cables; hierarchical network; lifetime measure; network performance evaluation; network traffic; telecommunications networks topology design; topology lifetime; Costs; IP networks; Network topology; Optical fiber cables; Optical fibers; Process design; Telecommunication network topology; Telecommunication traffic; Wavelength division multiplexing; Wavelength measurement; Dense wavelength division multiplexing (DWDM); linear programming; network topology; telecommunications;
Journal_Title :
Networking, IEEE/ACM Transactions on
DOI :
10.1109/TNET.2005.852889