A Joint Multicast Optimization Approach for QoS Provisioning in Optical Label Switching (OLS) Networks

被引:6
作者
Khlifi Y. [1 ,2 ]
Alotaibi M. [3 ]
机构
[1] Information Technology, Umm Al-Qura University, Makkah
[2] Digital Security Lab, SupCom, Carthage University, Tunis
[3] College of Computer and Information Systems, Umm Al-Qura University, Makkah
关键词
modeling and simulation; multicast; OLS networks; QoS provision; resources optimization;
D O I
10.1515/joc-2018-0169
中图分类号
学科分类号
摘要
Optical label switching is introduced for ensuring fast data transfer, quality of service (QoS) support, and better resource management. However, the important issue is how to optimize resource usage and satisfy traffic constraints for improving network performance and design. This paper proposes a dynamic approach that optimizes the resource in terms of link capacity and FDL (fiber delay line) buffering as well as a wavelength converter. The proposed approach decreases the resources usage and guarantees QoS support for various traffic demands. The optimization strategy consists of two stages: path building and traffic management. The path building assures logical topology making using the cumulative cost of available resource and traffic requirements including unicast and multicast. The traffic management solves the resource formulation problem during the traffic transfer by guaranteeing the required loss and blocking delay. Simulation work is conducted for validating the proposed approach and evaluating its performances and effectiveness. Simulation results show that our proposal minimizes effectively the use of link capacity of lightpath and light-tree. Moreover, our approach optimizes the use of buffering capacity and wavelength converter and guarantees QoS support according to traffic requirements. © 2019 Walter de Gruyter GmbH, Berlin/Boston.
引用
收藏
页码:593 / 609
页数:16
相关论文
共 22 条
[1]  
Yao S., Mukherjee B., Advances in photonic packet switching: An overview, Ieee Commun Mag, 38, pp. 84-17, (2000)
[2]  
Blumenthal D.J., Olsson B-E, Rossi G, Dimmick TE, Rau L, Masanovic M et al. All-optical label swapping networks and technologies, J Lightwave Technol, 18, pp. 2058-2074, (2000)
[3]  
Yoo S.J., Vegas Olmos JJ, Chi N, Zervas G, Simeonidou D, Yu S, Optical-label switching based packet routing system with contention resolution capabilities in wavelength, time, and space domains, Anaheim, (2002)
[4]  
Vincenzo E., Listanti M., Cost evaluation of optical packet switches equipped with limited-range and full-range converters for contention resolution, J Lightwave Technol, 4, pp. 390-407, (2008)
[5]  
Sahasrabuddhe L.H., Mukherjee B., Light-tree: Optical multicasting for improved performance in wavelength-routed networks, Ieee Commun Mag, 2, pp. 67-733, (1999)
[6]  
Jaekel A., Bari A., Rahman Q., Chen Y., Bandyopadhyay S., Aneja Y., Resource efficient network design and traffic grooming strategy with guaranteed survivability, Opt Switching Networking, 9, pp. 271-285, (2012)
[7]  
Khlifi Y., Boudriga N., Obaidat M.S., A QoS-based scheme for planning and dimensioning of optical label switched networks, Glasgow, Scotland, (2007)
[8]  
Obaidat M.S., Khlifi Y., Boudriga N., Performance analysis of a dynamic QoS provision in optical label switched networks, J Comput Commun, 30, pp. 3012-3026, (2007)
[9]  
Pavarangkoon P., Oki E., An optimization approach for survivable lightpath provisioning in multi-domain optical networks, J Opt Switching Networking, 22, pp. 26-41, (2016)
[10]  
Ghimirea R., Mohanb S., Dynamic connection establishment and network re-optimization in flexible optical networks, Photon Network Commun, 29, pp. 307-321, (2015)