Title :
RRPD strategies for a T-OBS network architecture
Author :
Pedrola, Oscar ; Careglio, Davide ; Klinkowski, Miroslaw ; Solé-Pareta, Josep
Author_Institution :
CCABA, Univ. Politec. de Catalunya, Barcelona, Spain
Abstract :
In this paper, we deal with the physical layer impairments (PLIs) in optical burst switching (OBS). In particular we present a formulation of the routing and regenerator placement and dimensioning (RRPD) problem for a feasible translucent OBS (T-OBS) network architecture. Since addressing the joint RRPD problem results in an extremely complex undertaking, we decouple the problem, and hence, we eventually provide formal models to solve routing and RPD separately in the socalled R+RPD problem. Thus, making use of mixed integer linear programming (MILP) formulations, we first address the routing problem with the aim of minimizing congestion in bottleneck network links, and second, we tackle the issue of performing a sparse placement of electrical regenerators in the network. Since the RPD formulation requires high computational effort for large problem instances, we also propose two alternative heuristic strategies that provide good near-optimal solutions within reasonable time limits. To be precise, we evaluate the trade-off between optimality and complexity provided by these methods. Finally, we conduct a series of simulation experiments on the T-OBS network that prove that the R+RPD strategies effectively deal with burst losses caused by the impact of PLIs, and therefore, ensure that the overall T-OBS network performance remains unaffected.
Keywords :
integer programming; linear programming; optical burst switching; optical repeaters; telecommunication congestion control; telecommunication network routing; RRPD strategy; T-OBS network architecture; bottleneck network link; electrical regenerator; feasible translucent OBS network architecture; formal model; heuristic strategy; high computational effort; joint RRPD problem; mixed integer linear programming formulation; near-optimal solution; optical burst switching; physical layer impairment; routing and regenerator placement and dimensioning; routing problem; sparse placement; Argon; Computer architecture; Optical noise; Optical switches; Repeaters; Routing; Signal to noise ratio;
Conference_Titel :
High Performance Switching and Routing (HPSR), 2011 IEEE 12th International Conference on
Conference_Location :
Cartagena
Print_ISBN :
978-1-4244-8454-6
Electronic_ISBN :
978-1-4244-8455-3
DOI :
10.1109/HPSR.2011.5986009