DocumentCode :
1802308
Title :
Reliable multicast routing for software-defined networks
Author :
Shan-Hsiang Shen ; Liang-Hao Huang ; De-Nian Yang ; Wen-Tsuen Chen
Author_Institution :
Inst. of Inf. Sci., Taipei, Taiwan
fYear :
2015
fDate :
April 26 2015-May 1 2015
Firstpage :
181
Lastpage :
189
Abstract :
Current traffic engineering in SDN mostly focuses on unicast. By contrast, compared with individual unicast, multicast can effectively reduce network resources consumption to serve multiple clients jointly. Since many important applications require reliable transmissions, it is envisaged that reliable multicast plays a crucial role when an SDN operator plans to provide multicast services. However, the shortest-path tree (SPT) adopted in current Internet is not bandwidth-efficient, while the Steiner tree (ST) in Graph Theory is not designed to support reliable transmissions since the selection of recovery nodes is not examined. In this paper, therefore, we propose a new reliable multicast tree for SDN, named Recover-aware Steiner Tree (RST). The goal of RST is to minimize both tree and recovery costs, while finding an RST is very challenging. We prove that the RST problem is NP-Hard and inapproximable within k, which is the number of destination nodes. Thus, we design an approximate algorithm, called Recover Aware Edge Reduction Algorithm (RAERA), to solve the problem. The simulation results on real networks and large synthetic networks, together with the experiment on our SDN testbed with real YouTube traffic, all manifest that RST outperforms both SPT and ST. Also, the implementation of RAERA in SDN controllers shows that an RST can be returned within a few seconds and thereby is practical for SDN networks.
Keywords :
Internet; computer network reliability; multicast communication; social networking (online); software defined networking; telecommunication network routing; telecommunication traffic; trees (mathematics); Internet; NP-Hard; RAERA; RST; SDN network; SPT; YouTube traffic; approximate algorithm; multicast routing reliability; network resource consumption reduction; recover aware edge reduction algorithm; recover-aware Steiner tree; shortest-path tree; software defined network; traffic engineering; Algorithm design and analysis; Approximation algorithms; Approximation methods; Computer network reliability; Reliability; Routing; TV; SDN; multicast; reliable transmissions; traffic engineering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Communications (INFOCOM), 2015 IEEE Conference on
Conference_Location :
Kowloon
Type :
conf
DOI :
10.1109/INFOCOM.2015.7218381
Filename :
7218381
Link To Document :
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