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QMRPRNS: Design of QoS multicast routing protocol using reliable node selection scheme for MANETs

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Abstract

A mobile Ad-Hoc networks (MANETs) is a continuously self-configuring, infrastructure-less network of wireless mobile devices. In which multicast is one of the efficient way of communication. Currently, several research have been conducted to design multicast routing protocols for wireless mobile ad-hoc networks (MANETs). Multicasting is a technique that allow to send the same message to a group of destinations simultaneously. However, it faces several challenges against its implementation in ad-hoc network due to its dynamic nature, lack of bandwidth, short battery lifetime of the mobile devices. The multicast routing protocol MAODV have several constraints as mentioned above. Hence to address these constraints a reliable neighbour nodes selection scheme has been integrated over MAODV. This paper attempt a Quality of Service (QoS) based multicast routing protocol using reliable neighbour nodes selection scheme (QMRPRNS) for same. The simulation has been conducted to compare the performance of the proposed scheme against some existing multicast routing protocols which shows significant improvement over EMAODV and MAODV.

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References

  1. Torkestani JA, Meybodi MR (2011) A link stability-based multicast routing protocol for wireless mobile ad hoc networks. J Netw Comput Appl 34(4):1429–1440

    Article  Google Scholar 

  2. Song Y, Gui C, Xiaocheng L, Chen H, Sun B (2015) A genetic algorithm for energy-efficient based multipath routing in wireless sensor networks. Wirel Pers Commun 85(4):2055–2066

    Article  Google Scholar 

  3. Wang N-C, Lee C-Y (2012) A multi-path qos multicast routing protocol with slot assignment for mobile ad hoc networks. Inform Sci 208:1–13

    Article  Google Scholar 

  4. Li L, Li C (2007) A qos multicast routing protocol for clustering mobile ad hoc networks. Comput Commun 30(7):1641–1654

    Article  Google Scholar 

  5. Xia H, Xia S, Jia Y, Jia Z, Sha EH-M (2014) Applying link stability estimation mechanism to multicast routing in manets. J Syst Archit 60(5):467–480

    Article  Google Scholar 

  6. Basurra SS, De Vos M, Padget J, Ji Y, Lewis T, Armour S (2015) Energy efficient zone based routing protocol for manets. Ad Hoc Netw 25:16–37

    Article  Google Scholar 

  7. Hou R, Wang C, Zhu Q, Li J (2014) Interference-aware qos multicast routing for smart grid. Ad Hoc Netw 22:13–26

    Article  Google Scholar 

  8. Wang X, Cheng H, Huang M (2014) Qos multicast routing protocol oriented to cognitive network using competitive coevolutionary algorithm. Expert Syst Appl 41(10):4513–4528

    Article  Google Scholar 

  9. Wang G, Peng Y, Feng P, Wang N (2014) An energy consumption minimization routing scheme based on rate adaptation with qos guarantee for the mobile environment. Comput Netw 74:48–57

    Article  Google Scholar 

  10. Sahin D, Gungor VC, Kocak T, Tuna G (2014) Quality-of-service differentiation in single-path and multi-path routing for wireless sensor network-based smart grid applications. Ad Hoc Netw 22:43–60

    Article  Google Scholar 

  11. Basarkod PI, Manvi SS (2015) Mobility and qos aware anycast routing in mobile ad hoc networks. Comput Electr Eng

  12. Alasaad A, Nicanfar H, Gopalakrishnan S, Leung VCM (2013) A ring-based multicast routing topology with qos support in wireless mesh networks. Wirel Netw 19(7):1627–1651

    Article  Google Scholar 

  13. Ivascu GI, Pierre S, Quintero A (2009) Qos routing with traffic distribution in mobile ad hoc networks. Comput Commun 32(2):305–316

    Article  Google Scholar 

  14. Biradar RC, Manvi SS (2012) Ring mesh based multicast routing scheme in manet using bandwidth delay product. Wirel Pers Commun 66(1):117–146

    Article  Google Scholar 

  15. Das SK, Tripathi S, Burnwal AP (2015) Fuzzy based energy efficient multicast routing for ad-hoc network. In: 2015 Third international conference on computer, communication, control and information technology (C3IT). IEEE, p 2015

  16. Cadger F, Curran K, Santos J, Moffett S (2013) Towards a location and mobility-aware routing protocol for improving multimedia streaming performance in manets. Peer-to-Peer Networking and Applications 8(3):543–554

    Article  Google Scholar 

  17. Wang Gaocai, Peng Ying, Feng Peng, Wang Nao (2014) An energy consumption minimization routing scheme based on rate adaptation with qos guarantee for the mobile environment. Comput Netw 74:48–57

    Article  Google Scholar 

  18. Yen Y-S, Chan Y-K, Chao H-C, Park JH (2008) A genetic algorithm for energy-efficient based multicast routing on manets. Comput Commun 31(4):858–869

    Article  Google Scholar 

  19. Basurra SS, De Vos M, Padget J, Ji Y, Lewis T, Armour S (2015) Energy efficient zone based routing protocol for manets. Ad Hoc Netw 25:16–37

    Article  Google Scholar 

  20. Liu Y, Wang Z (2012) Maximizing energy utilization routing scheme in wireless sensor networks based on minimum hops algorithm. Comput Electr Eng 38(3):703–721

    Article  MATH  Google Scholar 

  21. Budyal VR, Manvi SS (2014) Agent driven delay and power constrained multicast routing in mobile ad hoc networks by using anfis. Wirel Pers Commun 75(1):531–556

    Article  Google Scholar 

  22. Torkestani JA, Meybodi MR (2010) Mobility-based multicast routing algorithm for wireless mobile ad-hoc networks: A learning automata approach. Comput Commun 33(6):721–735

    Article  MATH  Google Scholar 

  23. Xie J, Talpade RR, Mcauley A, Liu M (2002) Amroute: ad hoc multicast routing protocol. Mobile Networks and Applications 7(6):429–439

    Article  Google Scholar 

  24. Cheng H, Cao J, Fan X (2009) Gmzrp: geography-aided multicast zone routing protocol in mobile ad hoc networks. Mobile Networks and Applications 14(2):165–177

    Article  Google Scholar 

  25. Moussaoui A, Semchedine F, Boukerram A (2014) A link-state qos routing protocol based on link stability for mobile ad hoc networks. J Netw Comput Appl 39:117–125

    Article  Google Scholar 

  26. Lee S-J, William S, Gerla M (2002) On-demand multicast routing protocol in multihop wireless mobile networks. Mobile Networks and Applications 7(6):441–453

    Article  Google Scholar 

  27. Royer EM, Perkins CE (1999) Multicast operation of the ad-hoc on-demand distance vector routing protocol. In: Proceedings of the 5th annual ACM/IEEE international conference on mobile computing and networking. ACM, pp 207–218

  28. Junhai L, Ye D, Liu X, Mingyu F (2009) A survey of multicast routing protocols for mobile ad-hoc networks. Communications Surveys & Tutorials, IEEE 11(1):78–91

    Article  Google Scholar 

  29. Jahanshahi M, Barmi AT (2014) Multicast routing protocols in wireless mesh networks: a survey. Computing 96(11):1029–1057

    Article  MathSciNet  MATH  Google Scholar 

  30. Ozaki T, Kim JB, Suda T (1999) Bandwidth-efficient multicast routing protocol for ad-hoc networks. IEEE

  31. Anupama KR, Balasubramanian S (2002) A multicast protocol for mobile adhoc networks. In: 2002 IEEE international conference on personal wireless communications. IEEE, p 2002

  32. Meghanathan N (2011) A location prediction based routing protocol and its extensions for multicast and multi-path routing in mobile ad hoc networks. Ad Hoc Netw. 9(7):1104–1126

    Article  Google Scholar 

  33. Yadav AK, Dlbmrp ST (2015) Design of load balanced multicast routing protocol for wireless mobile ad-hoc network. Wirel Pers Commun 85(4):1815–1829

    Article  Google Scholar 

  34. Chen H, Yan Z, Sun B, Zeng Y, He X (2009) An entropy-based long-life multicast routing protocol in maodv. In: ISECS international colloquium on computing, communication, control, and management, 2009. CCCM 2009, vol 1. IEEE, p 2009

  35. Wu C-W, Tay YC (1999) Amris: a multicast protocol for ad hoc wireless networks. In: Military communications conference proceedings, 1999. MILCOM 1999, IEEE, vol 1. IEEE, pp 25–29

  36. Chang C-Y, Wang Y-P, Chao H-C (2007) An efficient mesh-based core multicast routing protocol on manets. J Internet Technol 8(2):229–239

    Google Scholar 

  37. Kharraz M-A, Sarbazi-Azad H, Zomaya AY (2012) On-demand multicast routing protocol with efficient route discovery. J Netw Comput Appl 35(3):942–950

    Article  Google Scholar 

  38. Lee M, Kim YK (2001) Patchodmrp: an ad-hoc multicast routing protocol. In: Information networking, 2001. 15th International Conference on Proceedings. IEEE, pp 537–543

  39. Cai SB, Yang XZ (2003) The performance of poolodmrp protocol. In: Management of multimedia networks and services. Springer, pp 90–101

  40. Biswas J, Barai M, Nandy SK (2004) Efficient hybrid multicast routing protocol for ad-hoc wireless networks. In: 29th Annual IEEE international conference on local computer networks, 2004. IEEE, pp 180–187

  41. Mnaouer AB, Chen L, Foh CH, Tantra JW (2007) Ophmr: an optimized polymorphic hybrid multicast routing protocol for manet. IEEE Trans Mob Comput 6(5):551–562

    Article  Google Scholar 

  42. Camp T, Boleng J, Davies V (2002) A survey of mobility models for ad hoc network research. Wirel Commun Mob Comput 2(5):483–502

    Article  Google Scholar 

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Correspondence to Ajay Kumar Yadav.

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Yadav, A.K., Tripathi, S. QMRPRNS: Design of QoS multicast routing protocol using reliable node selection scheme for MANETs. Peer-to-Peer Netw. Appl. 10, 897–909 (2017). https://doi.org/10.1007/s12083-016-0441-8

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