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Novel anchor-selection scheme for distributed mobility management

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The number of subscribers in mobile networks is growing rapidly, which challenges network management and data delivery. Efficient management and routing are key solutions. One important solution is distributed mobility management (DMM), which handles the mobility of subscribers at the edges of mobile networks and load balancing. Otherwise, mobility anchors are distributed across a network that can manage the handover procedures. In this paper, we propose a novel mobility anchor-selection scheme based on the results of a cost function with three factors to select a suitable cell as well as an anchor for moving subscribers and improving the handover performances of networks. Our results illustrate that the proposed scheme provides significantly enhanced handover performance.
Wydawca
Czasopismo
Rocznik
Tom
Strony
143–163
Opis fizyczny
Bibliogr. 36 poz., rys., tab.
Twórcy
  • National University of Mongolia, Department of Electronics and Communication Engineering, School of Engineering and Applied Sciences
  • National University of Mongolia, Department of Electronics and Communication Engineering, School of Engineering and Applied Sciences
  • Brno University of Technology
autor
  • Waseda University, Global Information and Telecommunication Institute
  • National University of Mongolia, Department of Electronics and Communication Engineering, School of Engineering and Applied Sciences
Bibliografia
  • [1] 23.799 G.T.: Study on Architecture for Next Generation System, Technical report, Internet Engineering Task Force (IETF), 2016.
  • [2] 36.300 G.T.: Technical Specification Group Radio Access Network Evolved Universal Terrestrial Radio Access (E-UTRA) and Evolved Universal Terrestrial Radio Access Network (E-UTRAN), Overall description; (Release 13), 2015.
  • [3] 38.913 G.T.: Technical Specification Group Radio Access Network; Study on Scenarios and Requirements for Next Generation Access Technologies, 2017.
  • [4] Ali-Ahmad H., Moses D., Moustafa H., Seite P., Condexia T.: Mobility anchor selection in dmm: Use-case scenarios, IETF-Draft (work-in-progress), 2013.
  • [5] Baldo N.: The ns-3 LTE module by the LENA project, Center Tecnologic de Telecomunicacions de Catalunya, 2011.
  • [6] Bernardos C.J., de la Oliva A., Giust F.: A PMIPv6-based solution for Distributed Mobility Management, 2013.
  • [7] Bradai A., Benslimane A., Singh K.D.: Dynamic anchor points selection for mobility management in Software Defined Networks, Journal of Network and Computer Applications, vol. 57, pp. 1–11, 2015.
  • [8] Carmona-Murillo J., Friderikos V., Gonzalez-Sanchez J.: A hybrid DMM solution and trade-off analysis for future wireless networks, Computer Networks, vol. 133, pp. 17–32, 2018.
  • [9] Chan H., Liu D., Seite P., Yokota H., Korhonen J.: Requirements for distributed mobility management, Technical report, Internet Engineering Task Force (IETF), 2014.
  • [10] Chen Z., Bjornson E.: Channel Hardening and Favorable Propagation in Cell-Free Massive MIMO with Stochastic Geometry, IEEE Transactions on Communications, vol. 66(11), pp. 5205–5219, 2018.
  • [11] Cisco Visual Networking Index: Forecast and Trends, 2017–2022 White paper, Cisco Systems, pp. 1–7, 2019.
  • [12] Cisco Visual Networking Index: Global Mobile Data Traffic Forecast Update, 2017–2022 White paper, Cisco Systems, pp. 1–7, 2019.
  • [13] Cominardi L., Giust F., Bernardos C.J., De La Oliva A.: Distributed mobility management solutions for next mobile network architectures, Computer Networks, vol. 121, pp. 124–136, 2017.
  • [14] Condeixa T., Sargento S.: Context-aware adaptive IP mobility anchoring, Computer Networks, vol. 71, pp. 84–99, 2014.
  • [15] Davaasambuu B.: Study on Mobility Management Scheme of Moving Relay Nodes in LTE Network, Ph.D. thesis, Waseda University, 2016.
  • [16] Davaasambuu B., Sato T.: A Cost Based Handoff Hysteresis Scheme in Wireless Mobile Relay Node. In: 2014 IEEE 80th Vehicular Technology Conference (VTC2014-Fall), pp. 1–5, 2014. doi: 10.1109/VTCFall.2014.6965808.
  • [17] Figueiredo S., Jeon S., Gomes D., Aguiar R.L.: D3M: Multicast listener mobility support mechanisms over distributed mobility anchoring architectures, Journal of Network and Computer Applications, vol. 53, pp. 24–38, 2015.
  • [18] Huang C.M., Dao D.T., Chiang M.S.: A Bursty Multi-node Handover scheme for mobile internet using the partially Distributed Mobility Management (BMH– DMM) architecture, Telecommunication Systems, vol. 69, pp. 113–130, 2018.
  • [19] Huang C.M., Dao D.T., Chiang M.S.: SDN-FHOR-DMM: a software defined network (SDN)-based fast handover with the optimal routing control method for distributed mobility management (DMM), Telecommunication Systems, vol. 72, pp. 1–21, 2019.
  • [20] Interdonato G., Ngo H.Q., Frenger P., Larsson E.G.: Downlink Training in Cell-Free Massive MIMO: A Blessing in Disguise, arXiv preprint arXiv:190310046, 2019.
  • [21] Jeon S., Aguiar R.L., Kang N.: Load-balancing proxy mobile IPv6 Networks with Mobility Session Redirection, IEEE Communications Letters, vol. 17(4), pp. 808–811, 2013.
  • [22] Kim J., Kim D., Choi S.: 3GPP SA2 architecture and functions for 5G mobile communication system, ICT Express, vol. 3(1), pp. 1–8, 2017.
  • [23] Ko H., Jang I., Lee J., Pack S., Lee G.: SDN-based distributed mobility management for 5G. In: Consumer Electronics (ICCE), 2017 IEEE International Conference on, pp. 116–117, IEEE, 2017.
  • [24] Lee D.W., Gil G.T., Kim D.H.: A Cost-Based Adaptive Handover Hysteresis Scheme to Minimize the Handover Failure Rate in 3GPP LTE System, EURASIP Journal on Wireless Communications and Networking, vol. 2010(1), p. 750173, 2010.
  • [25] Liebsch M., Seite P., Karagiannis G.: Distributed mobility management: Framework and analysis, Internet Engineering Task Force (IETF), 2013.
  • [26] Nguyen T.T., Bonnet C.: A hybrid centralized-distributed mobility management architecture for Network Mobility. In: 2015 IEEE 16th International Symposium on A World of Wireless, Mobile and Multimedia Networks (WoWMoM), pp. 1–9, IEEE, 2015.
  • [27] Nguyen T.T., Bonnet C., Harri J.: SDN-based distributed mobility management for 5G networks. In: Wireless Communications and Networking Conference (WCNC), 2016 IEEE, pp. 1–7, IEEE, 2016.
  • [28] Nguyen T.T., Bonnet C.: A hybrid centralized-distributed mobility management for supporting highly mobile users. In: IEEE-ICC, pp. 3945–3951, 2015.
  • [29] Ordonez-Lucena J., Ameigeiras P., Lopez D., Ramos-Munoz J.J., Lorca J., Folgueira J.: Network slicing for 5G with SDN/NFV: Concepts, architectures, and challenges, IEEE Communications Magazine, vol. 55(5), pp. 80–87, 2017.
  • [30] Roy R.R.: Handbook of Mobile Ad Hoc Networks for Mobility Models, vol. 170, Springer, 2011.
  • [31] Sanchez M.I., De la Oliva A., Mancuso V.: Experimental evaluation of an SDN-based distributed mobility management solution. In: Proceedings of the Workshop on Mobility in the Evolving Internet Architecture, pp. 31–36, ACM, 2016.
  • [32] Seite P., Bertin P., Lee J.H.: Distributed Mobility Anchoring, Internet-Draft draft-seite-dmm-dma-07, Internet Engineering Task Force, 2014. https: //datatracker.ietf.org/doc/html/draft-seite-dmm-dma-07. Work in Progress.
  • [33] Sun K., Kim Y.: Flow Mobility Management in PMIPv6-based DMM (Distributed Mobility Management) Networks, Journal of Wireless Mobobile Networks Ubiquitous Computing and Dependable Applications, vol. 5(4), pp. 120–127, 2014.
  • [34] Valtulina L., Karimzadeh M., Karagiannis G., Heijenk G., Pras A.: Performance evaluation of a SDN/OpenFlow-based Distributed Mobility Management (DMM) approach in virtualized LTE systems. In: Globecom Workshops (GC Wkshps), 2014, pp. 18–23, IEEE, 2014.
  • [35] Yang H., Kim Y.: Routing Optimization with SDN, Internet-Draft draft-yang-dmm-sdn-dmm-01, Internet Engineering Task Force, 2014.
  • [36] Yousaf F.Z., Bredel M., Schaller S., Schneider F.: NFV and SDN-Key Technology Enablers for 5G Networks, IEEE Journal on Selected Areas in Communications, vol. 35(11), pp. 2468–2478, 2017. doi: 10.1109/JSAC.2017.2760418.
Uwagi
PL
„Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).”
Typ dokumentu
Bibliografia
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