Title :
Differentiated Quality-of-Recovery in Survivable Optical Mesh Networks Using
-Structures
Author :
Sebbah, Samir ; Jaumard, Brigitte
Author_Institution :
Dept. of Electr. & Comput. Eng., Concordia Univ., Montreal, QC, Canada
fDate :
6/1/2012 12:00:00 AM
Abstract :
This paper investigates design methods of protection schemes in survivable WDM networks that use preconfigured protection structures (p-structures) in order to provide different quality-of-recovery (QoR) classes within 100% resilient single-link protection schemes. QoR differentiation is a practical and effective approach in order to strike different balances among protection cost, recovery delay, and management complexity. Based on the degree of pre-cross connectivity of the protection structures, we develop three design approaches of shared protection capacity schemes based on the following: 1) fully pre-cross-connected p-structures (fp-structures); 2) partially pre-cross-connected p-structures (pp-structures); and 3) dynamically reconfigured p -structures (dp -structures). In order to identify the optimal combinations of protection structures to meet the requirements of the three QoR classes, we use a column generation (CG) model that we solve using large-scale optimization techniques. Our CG decomposition approach is based on the separation processes of the design and selection of the protection structures. In the design process of the protection structures, the shape and protection capability of each p-structure is decided dynamically during the selection process depending on the network topology and the targeted QoR parameters. Extensive experiments are carried out on several data instances with different design constraints in order to measure the protection capacity cost and the recovery delay for the three QoR classes.
Keywords :
optical fibre networks; optimisation; telecommunication network topology; wavelength division multiplexing; CG decomposition approach; CG model; QoR differentiation; QoR parameters; column generation model; differentiated quality-of-recovery; dynamically reconfigured p-structures; fully precross-connected p-structures; large-scale optimization techniques; management complexity; network topology; partially precross-connected p-structures; preconfigured protection structures; recovery delay; resilient single-link protection schemes; shared protection capacity schemes; survivable optical mesh networks; Delay; Optical fiber networks; Optical switches; Process control; Shape; $p$-structures; Column generation; quality-of-recovery (QoR); reconfigurable protection capacity; recovery delay;
Journal_Title :
Networking, IEEE/ACM Transactions on
DOI :
10.1109/TNET.2011.2166560