DocumentCode
1081845
Title
A scalable approach for survivable virtual topology routing in optical WDM networks
Author
Todimala, Ajay ; Ramamurthy, Byrav
Author_Institution
Univ. of Nebraska, Lincoln
Volume
25
Issue
6
fYear
2007
fDate
8/1/2007 12:00:00 AM
Firstpage
63
Lastpage
69
Abstract
The survivable virtual topology routing problem is to route a virtual topology graph on a optical fiber physical topology such that the virtual topology remains connected when failures occur in the physical topology. In this work we study the problem of survivable virtual topology routing under single node/SRLG (Shared Risk Link Group) failure model. We prove that the survivable virtual topology routing problem under node/SRLG failures is NP-complete. We present an improved integer linear programming (ILP) formulation for computing the survivable routing of a virtual topology graph. However, ILP is not scalable when the network size scales more than a few tens of nodes. In this work, we present sub-classes of graphs which more accurately model an actual network and for which a survivable routing can be easily computed solving an ILP. We successfully computed the survivable routing of virtual topologies belonging to these sub-classes against link/SRLG failures for topologies of size up to 24 nodes.
Keywords
linear programming; optical fibre networks; telecommunication network reliability; telecommunication network routing; telecommunication network topology; wavelength division multiplexing; integer linear programming; optical WDM networks; optical fiber physical topology; single node share risk link group; survivable routing; virtual topology graph; wavelength division multiplexing; Bandwidth; Computer networks; Delta modulation; Integer linear programming; Network topology; Optical fiber networks; Optical fibers; Rail transportation; Routing; WDM networks;
fLanguage
English
Journal_Title
Selected Areas in Communications, IEEE Journal on
Publisher
ieee
ISSN
0733-8716
Type
jour
DOI
10.1109/JSAC-OCN.2007.020605
Filename
4285332
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