Modelling and Optimization of Multi-Service Optical Switching Networks with Threshold Management Mechanisms

DWDM networks make use of optical switching networks that allow light waves of multiple lengths to be serviced and provide the possibility of converting them appropriately. Research work on optical switching networks focuses on two main areas of interest: new non-blocking structures for optical switching networks and finding traffic characteristics of switching networks of the structures that are already well known. In practical design of switching nodes in optical networks, in many cases, the Clos switching networks are successfully used. Clos switching networks are also used in Elastic Optical Networks that can effectively manage allocation of resources to individual multi-service traffic streams. The research outcomes presented in this article deal with the problems of finding traffic characteristics in blocking optical switching networks with known structures. This article aims at presenting an analysis of the influence of traffic management threshold mechanisms on the traffic characteristics of multi-service blocking Clos switching networks that are used in the nodes of elastic optical networks as well as their influence on the traffic efficiency of network nodes. The analysis was carried out on the basis of research studies performed in a specially dedicated purpose-made simulation environment. The article presents a description of the simulation environment used in the experiments. The study was focused on the influence of the threshold mechanism, which is one of the most commonly used and elastic traffic management mechanisms, and on the traffic characteristics of switching networks that service different mixtures of multi-service Erlang, Engset and Pascal traffic streams. The conducted study validates the operational effectiveness and practicality of the application of the threshold mechanism to model traffic characteristics of nodes in an elastic optical network.

[1]  Maciej Stasiak,et al.  Modeling of Clos Switching Structures with Dynamically Variable Number of Active Switches in the Spine Stage , 2020 .

[2]  Maciej Stasiak An approximate model of a switching network carrying mixture of different multichannel traffic streams , 1993, IEEE Trans. Commun..

[3]  S. Kaczmarek,et al.  Multistage optical switching networks , 2002 .

[4]  TARUN GOYAL,et al.  ROUTING IN ALL-OPTICAL THREE STAGE-CLOS INTERCONNECTION NETWORKS , 2012 .

[5]  Mariusz Glabowski,et al.  Simulation studies of elastic optical networks based on 3-stage Clos switching fabric , 2020, Opt. Switch. Netw..

[6]  Maciej Stasiak,et al.  Point-to-group blocking in the switching networks with unicast and multicast switching , 2002, Perform. Evaluation.

[7]  Wojciech Kabacinski,et al.  Optical datacenter networks with elastic optical switches , 2017, 2017 IEEE International Conference on Communications (ICC).

[8]  Guido Maier,et al.  Assessing the Scalability of Next-Generation Wavelength Switched Optical Networks , 2014, Journal of Lightwave Technology.

[9]  Jerzy Tyszer,et al.  Object-Oriented Computer Simulation of Discrete-Event Systems , 1999, The Kluwer International Series on Discrete Event Dynamic Systems.

[10]  Maciej Stasiak,et al.  An approach to analytical modelling of optical switching networks , 2018 .

[11]  Nicola Calabretta,et al.  A 3-stage CLOS architecture for high-throughput optical packet switching , 2009, 2009 Asia Communications and Photonics conference and Exhibition (ACP).

[12]  Wojciech Kabacinski,et al.  Strict-Sense Nonblocking W-S-W Node Architectures for Elastic Optical Networks , 2016, Journal of Lightwave Technology.

[13]  Maciej Stasiak,et al.  On Increasing the Accuracy of Modeling Multi-Service Overflow Systems with Erlang-Engset-Pascal Streams , 2021, Electronics.