DocumentCode :
2259953
Title :
Optimum protection architecture for reliable dense-WDM lightwave networks
Author :
Shiragaki, Tatsuya ; Saito, Hiroyuki
Author_Institution :
C&C Media Res. Labs., NEC Corp., Kawasaki, Japan
Volume :
1
fYear :
1998
fDate :
7-11 Jun 1998
Firstpage :
181
Abstract :
This paper examines reliable and economical wavelength-division-multiplexed trunk-network protection architectures. Protection architectures for lightwave networks are classified as path/link switching type or dedicated/shared standby-resources type. The required number of optical links for each protection-architecture is calculated and compared in terms of the number of wavelengths, demand patterns, and several network topologies. The results show that the path-dedicated protection architecture, which enables fast protection, is pretty cost-effective for a typical regional network when the number of wavelengths is more than ten. Dense-WDM technologies will replace the economical and reliable protection-architecture from the ordinary link-shared protection to the path-dedicated protection
Keywords :
network topology; optical fibre networks; optical links; optical switches; optimisation; protection; reliability; wavelength division multiplexing; dedicated/shared standby-resources type; demand patterns; network topologies; optical links; optimum protection architecture; path/link switching type; regional network; reliable dense-WDM lightwave networks; wavelength-division-multiplexed trunk-network protection architectures; wavelengths; Network topology; Optical fiber communication; Optical fiber networks; Optical switches; Photonics; Protection; Synchronous digital hierarchy; Telecommunication network reliability; WDM networks; Wavelength division multiplexing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications, 1998. ICC 98. Conference Record. 1998 IEEE International Conference on
Conference_Location :
Atlanta, GA
Print_ISBN :
0-7803-4788-9
Type :
conf
DOI :
10.1109/ICC.1998.682659
Filename :
682659
Link To Document :
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