Title :
Embedded unidirectional incomplete hypercubes for optical networks
Author :
Tan, Swie Tsing ; Du, David H C
Author_Institution :
Dept. of Comput. Sci., Minnesota Univ., Minneapolis, MN, USA
fDate :
9/1/1993 12:00:00 AM
Abstract :
Many proposals of virtual regular topologies embedded in physical topologies for high-speed wavelength division multiplexing (WDM) optical networks do not consider the issue of allowing a variable number of nodes in the network. A solution for embedding a virtual unidirectional incomplete hypercube into a physical topology that does is presented. The proposed solution is a multichannel multihop network which has several elegant features: (a) it allows any number of nodes to be connected to the network, (b) it only requires a minor effort to reconfigure the new interconnection whenever a node is added or deleted for the network, (c) it supports a self-routing strategy, (d) the aggregate throughput of the network increases as more nodes are added, and (e) alternate paths are available which have a comparable distance to the destination as the primary path. The performance of the scheme is comparable to the performance of both the unidirectional hypercube and the bidirectional hypercube
Keywords :
hypercube networks; network topology; optical links; telecommunication network routing; wavelength division multiplexing; WDM; aggregate throughput; embedding; high-speed wavelength division multiplexing; interconnection; multichannel multihop network; node numbers; optical networks; paths; performance; physical topologies; self-routing strategy; virtual regular topologies; virtual unidirectional incomplete hypercube; Bandwidth; Hypercubes; Network topology; Optical fiber networks; Optical fibers; Optical transmitters; Routing; Spread spectrum communication; Throughput; Wavelength division multiplexing;
Journal_Title :
Communications, IEEE Transactions on