Title :
Capacity efficient distributed routing of mesh-restored lightpaths in optical networks
Author :
Sengupta, Sudipta ; Ramamurthy, Ramu
Author_Institution :
Tellium Inc., Oceanport, NJ, USA
Abstract :
A mesh-restored lightpath in an optical network has a primary route and a diversely routed backup route. The wavelength channels on the primary route of a mesh-restored lightpath are dedicated for that lightpath whereas the wavelength channels on the backup route are shared among different mesh-restored lightpaths. Wavelength channels are shared in a way that ensures restoration of all lightpaths affected by any single link failure. In the centralized scenario, complete knowledge of the network state allows determination of the sharability of a backup channel during path computation. This information is not available in the distributed scenario. Use of 1+1 routing algorithms for mesh-restored lightpaths leads to inefficient capacity sharing. We propose distributed routing techniques to decrease the capacity efficiency gap between centralized routing and 1+1 routing of mesh-restored lightpaths. The algorithm uses information about the number of available and (shared) backup channels in a link, which can be disseminated through traffic engineering extensions to OSPF. A sharing database at each OXC maintains information about the lightpaths whose primary or backup paths traverse that OXC. The approach involves distributed determination of the sharability of a link on the backup path during path signaling using the sharing database at each OXC on the backup path. This, combined with a retry scheme facilitated by crankback routing extensions to CR-LDP/RSVP-TE to reduce lightpath blocking, leads to capacity efficient distributed routing of mesh-restored lightpaths
Keywords :
optical fibre networks; telecommunication network routing; telecommunication traffic; 1+1 routing algorithms; OXC; capacity efficient distributed routing; centralized routing; crankback routing extensions; dedicated wavelength channels; distributed routing techniques; diversely routed backup route; lightpath restoration; mesh-restored lightpaths; optical networks; primary route; shared wavelength channels; sharing database; single link failure; traffic engineering; Computer networks; Distributed databases; Intelligent networks; Maintenance engineering; Mesh networks; Optical fiber networks; Optical interconnections; Optical switches; Routing; Wavelength division multiplexing;
Conference_Titel :
Global Telecommunications Conference, 2001. GLOBECOM '01. IEEE
Conference_Location :
San Antonio, TX
Print_ISBN :
0-7803-7206-9
DOI :
10.1109/GLOCOM.2001.966157