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A green energy-aware hybrid virtual network embedding approach

Published: 14 November 2015 Publication History
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  • Abstract

    In the past few years, the concept of network virtualization has received significant attention from industry and research fora, as it represents a promising way to diversify existing networks and ensure the co-existence of heterogeneous network architectures on top of shared substrates. Virtual network embedding (VNE) is the process of dynamically mapping virtual resources (i.e. virtual nodes and links) onto physical substrate resources. VNE is the main resource allocation challenge in network virtualization and is considered as an NP-hard problem. Several centralized and distributed VNE approaches have been proposed, with the aim of satisfying different objectives ranging from QoS, to economical profit, and network survivability. More recently, emerging VNE approaches started investigating the optimization of new objectives such as energy-efficiency and networks' security. In this work, we propose a green energy-aware hybrid VNE hybrid VN embedding approach that aims at achieving energy efficiency and resource consolidation, while minimizing CO2 emissions resulting from VNs operation. This approach consists of a hierarchical virtual networking management architecture in which control and management nodes collaborate for the splitting and embedding of sub-VNs requests to the cleanest substrate resources (i.e. the resources deployed in a sector with the smallest CO2 emission factor) available. Three different variants of our VNE algorithms, taking into consideration different resources' selection criteria (i.e. energy source, request priority, and request location) are presented, and their performance is compared with two existing VNE algorithms based on centralized and distributed embedding approaches. The comparative performance analysis shows that our proposed approach enables a more efficient VN embedding in terms of: a reduced number of substrate resources needed, a faster request mapping time, as well as resource consolidation and reduced resource cost. Furthermore, it enables a reduction of the carbon footprint of the VNE operation, thus resulting in a more green and environmentally conscious approach to network virtualization.

    References

    [1]
    T. Anderson, L. Perterson, S. Shenker, J. Turner, Overcoming the internet impasse through virtualization, in: Proceedings of ACM HOTNETS, 2004.
    [2]
    G. Sun, H. Yu, V. Anand, L. Li, A cost efficient framework and algorithm for embedding dynamic virtual network requests, Future Gen. Comput. Syst., 29 (2013) 1265-1277.
    [3]
    T. Ghazar, N. Samaan, Hierarchical approach for efficient virtual network embedding based on exact subgraph matching, in: IEEE Global Telecommunications Conference, 2011, pp. 1-6.
    [4]
    M. Yu, Y. Yi, J. Rexford, M. Chiang, Rethinking virtual network embedding: substrate support for path splitting and migration, ACM SIGCOMM CCR, 38 (2008) 17-29.
    [5]
    M. Chowdhury, M. Rahman, R. Boutaba, Vineyard: virtual network embedding algorithms with coordinated node and link mapping, IEEE/ACM Trans. Netw., 20 (2012) 206-219.
    [6]
    I. Fajjari, N. Aitsaadi, G. Pujolle, H. Zimmermann, "Vnr algorithm: a greedy approach for virtual networks reconfigurations," in Global Telecommunications Conference (GLOBECOM 2011), pp. 1-5, December 2011.
    [7]
    Z. Shun-Li, Q. Xue-Song, A novel virtual network mapping algorithm for cost minimizing, J. Sel. Areas Telecommun., 2011.
    [8]
    I. Houidi, W. Louati, D. Zeghlache, A distributed virtual network mapping algorithm, in: Proceedings of the ICC2008, 2008, pp. 5634-5640.
    [9]
    A. Leivadeas, C. Papagianni, S. Papavassiliou, Efficient resource mapping framework over networked clouds via iterated local search-based request partitioning, IEEE Trans. Parallel Distrib. Syst., 24 (2012) 1077-1086.
    [10]
    N. Lv, Z. Wang, T. Huang, J. Chen, Y. Liu, A hierarchical management architecture for virtual network mapping, in: International Conference on Internet Technology and Applications, 2010, pp. 1-4.
    [11]
    J.F. Botero, X. Hesselbach, M. Duelli, D. Schlosser, A. Fischer, H. de Meer, Energy efficient virtual network embedding, IEEE Commun. Lett., 16 (May 2012) 756-759.
    [12]
    S. Su, Z. Zhang, X. Cheng, Y. Wang, Y. Luo, Jie Wang, Energy-aware virtual network embedding through consolidation, in: Proceedings of IEEE InfoCom Workshop on Communications and Control for Sustainable Energy Systems, 2012, pp. 127-132.
    [13]
    J.F. Botero, X. Hesselbach, Greener networking in a network virtualization environment, Comput. Netw., 57 (2013) 2012-2039.
    [14]
    S. Su, Z. Zhang, A. Liu, X. Cheng, Y. Wang, X. Zhao, Energy-Aware virtual network embedding, IEEE/ACM Trans. Netw., 22 (2014) 1607-1620.
    [15]
    H. Liu, H. Cui, J. Wang, B. Lu, J. Chen, An adaptive energy-aware virtual network embedding scheme, in: Proceedings of IEEE Vehicular Technology Conference (VTC Spring), 2014, pp. 1-5.
    [16]
    L. Nonde, T. El Gorashi, J. Elmirghani, Energy efficient virtual network embedding for cloud networks, J. Lightwave Technol., 33 (2015) 1828-1849.
    [17]
    Environment Canada Reports, "Canada's emissions' trends", October 2013.
    [18]
    A. Fischer, J. Botero, M. Till Beck, H. de Meer, Virtual network embedding: a survey, IEEE Commun. Surv. Tutor., 15 (2013) 1888-1906.
    [19]
    A. Fischer, H. De Meer, Position paper: secure virtual network embedding, Praxis der Informationsverarbeitung und Kommunikation, 34 (2011) 190-193.
    [20]
    M. El Barachi, N. Kara, R. Dssouli, Towards a service-oriented network virtualization architecture, in: Proceedings of the 3rd ITU-T Kaleidoscope Event 2010 (K-2010), 2010, pp. 1-7.
    [21]
    "Tesla Powerwall," Online. Available: http://www.teslamotors.com/ powerwall Accessed 14 July 2015.
    [22]
    M. Chowdhury, F. Samuel, R. Boutaba, PolyViNE: policy-based virtual network embedding across multiple domains, in: 2nd ACM SIGCOMM Workshop on Virtualized Infrastructure Systems and Architectures, 2010.
    [23]
    "GNU Linear Programming Kit," Online. Available: http://www.gnu. org/software/glpk/ Accessed 25 June 2015.

    Cited By

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    • (2020)A Survey on the Current Challenges of Energy-Efficient Cloud Resources ManagementSN Computer Science10.1007/s42979-020-0078-91:2Online publication date: 29-Feb-2020
    • (2019)Resource availability–aware adaptive provisioning of virtual data center networksInternational Journal of Network Management10.1002/nem.206629:2Online publication date: 12-Mar-2019
    • (2016)Virtual Network Embedding Employing Renewable Energy Sources2016 IEEE Global Communications Conference (GLOBECOM)10.1109/GLOCOM.2016.7842376(1-6)Online publication date: 4-Dec-2016

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      Published In

      cover image Computer Networks: The International Journal of Computer and Telecommunications Networking
      Computer Networks: The International Journal of Computer and Telecommunications Networking  Volume 91, Issue C
      November 2015
      821 pages

      Publisher

      Elsevier North-Holland, Inc.

      United States

      Publication History

      Published: 14 November 2015

      Author Tags

      1. Energy-awareness
      2. Green computing
      3. Hybrid approach
      4. Network virtualization
      5. Virtual network embedding

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      View all
      • (2020)A Survey on the Current Challenges of Energy-Efficient Cloud Resources ManagementSN Computer Science10.1007/s42979-020-0078-91:2Online publication date: 29-Feb-2020
      • (2019)Resource availability–aware adaptive provisioning of virtual data center networksInternational Journal of Network Management10.1002/nem.206629:2Online publication date: 12-Mar-2019
      • (2016)Virtual Network Embedding Employing Renewable Energy Sources2016 IEEE Global Communications Conference (GLOBECOM)10.1109/GLOCOM.2016.7842376(1-6)Online publication date: 4-Dec-2016

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