Visible to the public Design of and Resiliency Enhancement in Coarse/Fine Hybrid Granular Routing Optical Networks Based on Iterative Path-Pair-Loop Inflation

TitleDesign of and Resiliency Enhancement in Coarse/Fine Hybrid Granular Routing Optical Networks Based on Iterative Path-Pair-Loop Inflation
Publication TypeConference Paper
Year of Publication2019
AuthorsItakura, Keisuke, Mori, Yojiro, Hasegawa, Hiroshi, Sato, Ken-ichi
Conference Name2019 15th International Conference on the Design of Reliable Communication Networks (DRCN)
ISBN Number978-1-5386-8461-0
Keywords30+0/0 route diversity improvement, Coarse Granular Routing, coarse hybrid granular routing optical networks, conventional networks, Dedicated Path Protection, fiber number reduction, fine hybrid granular routing optical networks, higher spectral resource utilization, highly resilient coarse granular routing optical network architecture, Iterative methods, iterative path-pair-loop inflation, network resiliency, optical channels, optical fibre networks, pubcrawl, redundant path, resilience, Resiliency, resilient path design, Routing and Wavelength Assignment, routing scheme, simulated annealing, simulated annealing technique, spectral-resource-utilization-efficient optical network architecture, telecommunication network routing, Virtual Direct Link, virtual direct links, wireless channels, working path
Abstract

A spectral-resource-utilization-efficient and highly resilient coarse granular routing optical network architecture is proposed. The improvement in network resiliency is realized by a novel concept named loop inflation that aims to enhance the geographical diversity of a working path and its redundant path. The trade-off between the inflation and the growth in circumference length of loops is controlled by the Simulated Annealing technique. Coarse granular routing is combined with resilient path design to realize higher spectral resource utilization. The routing scheme defines virtual direct links (VDLs) bridging distant nodes to alleviate the spectrum narrowing effect at the nodes traversed, allowing optical channels to be more densely accommodated by the fibers installed. Numerical experiments elucidate that the proposed networks successfully achieve a 30+0/0 route diversity improvement and a 12% fiber number reduction over conventional networks.

URLhttps://ieeexplore.ieee.org/document/8713705
DOI10.1109/DRCN.2019.8713705
Citation Keyitakura_design_2019