Author_Institution :
Dept. of Electron. & Electr. Eng., Univ. Coll. London, London, UK
Abstract :
In elastic optical networks, digital coherent transceivers modify their symbol rate, modulation format, and forward error correction to best serve the network demands. In a nonlinear elastic optical network, these parameters are inherently coupled with the routing algorithm. We propose to use congestion aware routing in a nonlinear elastic optical network and demonstrate its efficacy for the NSFNET reference network (14 nodes, 22 links). The network is sequentially loaded with 100 GbE demands until a demand becomes blocked, this procedure being repeated 10000 times to estimate the network blocking probability (NBP). Three routing algorithms are considered: 1) shortest path routing; 2) simple congestion aware algorithm; and 3) weighted congestion aware routing algorithm with 50, 25, 12.5, and 6.25 GHz resolution flexgrids. For NBP = 1% using a 50 GHz grid, congestion aware routing doubles the network capacity compared with the shortest path routing. When congestion aware routing is combined with a 6.25 GHz resolution flexgrid, a fivefold increase in network capacity is afforded.
Keywords :
error statistics; nonlinear optics; optical fibre networks; optical modulation; optical transceivers; telecommunication network routing; NBP; NSFNET reference network; digital coherent transceivers; forward error correction; frequency 12.5 GHz; frequency 25 GHz; frequency 50 GHz; frequency 6.25 GHz; modulation format; network blocking probability; network capacity; nonlinear elastic optical networks; shortest path routing algorithm; simple congestion aware algorithm; symbol rate; weighted congestion aware routing algorithm; Fiber nonlinear optics; Optical fiber amplifiers; Optical fiber networks; Routing; Signal to noise ratio; Optical fiber communication; adaptive modulation; extreme value distributions; networks; routing;