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An Adaptive Secure and Efficient Routing Protocol for Mobile Ad Hoc Networks

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Abstract

The rapidly emerging wireless service requirements and deployment demands over last few decades necessitates the application of Mobile Ad hoc Networks in many areas. These application areas vary from social networks to safety-critical domains such as environmental monitoring, disaster rescue operations, military communications, etc. The potency of the ad hoc network deployment in a specific context is significantly affected by the underlying routing protocol. Hence, developing an efficient and secure routing protocol for MANETs is an important task in order to achieve the service level requirements and to satisfy the deployment demands effectively. However, development of such routing protocol is a challenging problem due to the inherent characteristics of ad hoc networks: frequent topology changes, open wireless medium, and limited resource constraints, etc. In addition, the stringent requirements: mobility, performance, security, trust and timing constraints, etc. add complexity to this problem. In this paper, we present an adaptive routing protocol for MANETs, which dynamically configures the routing function with respect to the metrics: (1) the varying requirement parameters and (2) the contextual features as per the desired application context. The requirement models include various performance, security, and functional parameters. On the other hand, the contextual features include mobility of nodes/groups of nodes, nodes’ trust values, resource constraints of nodes, geographical context, roles of individual nodes etc. Our routing protocol is evaluated with extensive simulation test cases and the efficacy of the protocol is reported.

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References

  1. Loo, J., Lloret, J., & Ortiz, J. H. (2011). Mobile ad hoc networks: Current status and future trends. Boca Raton, FL: CRC.

    Google Scholar 

  2. Tripathy, B. K., Bera, P., & Rahman, M. A. (2016). Analysis of trust models in mobile ad hoc networks: A simulation based study. In IEEE COMSNETS (pp. 1–8).

  3. Nosratinia, A., Hunter, T., & Hedayat, A. (2004). Cooperative communication in wireless networks. IEEE Communications Magazine, 42(10), 74–80.

    Google Scholar 

  4. Laneman, J., Tse, D., & Wornell, G. (2004). Cooperative diversity in wireless networks: Efficient protocols and outage behavior. IEEE Transactions on Information Theory, 50(12), 3062–3080.

    MathSciNet  MATH  Google Scholar 

  5. Grossglauser, M., & Tse, D. N. C. (2002). Mobility increases the capacity of ad hoc wireless networks. IEEE/ACM Transactions on Networking, 10(4), 477–486.

    Google Scholar 

  6. Corson, S., & Macker, J. (1999). Mobile ad hoc networking (MANET): Routing protocol performance issues and evaluation considerations. In RFC 2501, IETF network working group.

  7. Belding-Royer, E., Perkins, C., & Das, S. (2003). Ad hoc on-demand distance vector (AODV) routing. In RFC 3561, IETF network working group.

  8. Chakeres, I. D., & Belding-Royer, E. (2004). AODV routing protocol implementation design. In Proceedings 24th IEEE international conference on distributed computing systems workshops (pp. 698–703).

  9. Clausen, T., & Jacquet, P. (2003) Optimized link state routing protocol (OLSR). In RFC 3626, IETF network working group.

  10. Jacquet, P., et al. (2001). Optimized link state routing protocol for ad hoc networks. In Proceedings IEEE INMIC (pp. 62–68).

  11. Cadger, F., Curran, K., Santos, J., & Moffett, S. (2013). A survey of geographical routing in wireless ad-hoc networks. IEEE Communication Surveys and Tutorials, 15(2), 621–653.

    Google Scholar 

  12. Cadger, F., Curran, K., Santos, J., & Moffett, S. (2016). Location and mobility-aware routing for improving multimedia streaming performance in MANETs. Springer Wireless Personal Communications, 86(3), 1653–1672.

    Google Scholar 

  13. Shrivastava, L., & Tomar, G. S. (2016). A critical analysis of congestion adaptive routing protocols for mobile ad-hoc networks. International Journal of Future Generation Communication and Networking, 9(6), 9–16.

    Google Scholar 

  14. Gandhi, C., & Arya, V. (2013). A survey of energy-aware routing protocols and mechanisms for mobile ad hoc networks. Intelligent Computing, Networking, and Informatics Advances in Intelligent Systems and Computing, 243, 111–117.

    Google Scholar 

  15. Singh, T., Singh, J., & Sharma, S. (2016). Survey of secure routing protocols in MANET. International Journal of Mobile Network Design and Innovation Archive, 6(3), 142–155.

    Google Scholar 

  16. Tripathy, B. K., Sudhir, A., Bera, P., & Rahman, M. A. (2017). Formal modeling and verification of requirements of adaptive routing protocol for mobile ad-hoc network. In Proceedings of 41st IEEE COMPSAC (pp. 548–556), Turin, Italy.

  17. Giannoulis, S., Katsanos, C., Koubias, S., & Papadopoulos, G. (2004). A hybrid adaptive routing protocol for ad hoc wireless networks. In IEEE international workshop on factory communication systems.

  18. Li, J., Jannotti, J., De Couto, D. S. J., Karger, D. R., & Morris, R. (2000). Ascalable location service for geographic ad hoc routing. In Proceedings 6th annual international conference on mobile computing and networking (pp. 120–130), New York, USA.

  19. Basagni, S., Chlamtac, I., Syrotiuk, V. R., & Woodward, B. A. (1998). A distance routing effect algorithm for mobility (DREAM). In Proceedings 4th annual ACM/IEEE MobiCom (pp. 76–84).

  20. Finn, G. (1987). Routing and addressing problems in large metropolitan-scale internetworks, technical paper.

  21. Kranakis, E., Science, S. O. C., Singh, H., & Urrutia, J. (1999). Compass routing on geometric networks. In Proceedings 11th Canadian conference on computational geometry, (pp. 51–54).

  22. Kuhn, F., Wattenhofer, R., & Zollinger, A. (2008). An algorithmic approach to geographic routing in ad hoc and sensor networks. IEEE/ACM Transactions on Networking, 16(1), 51–62.

    Google Scholar 

  23. Bose, P., Morin, P., Stojmenovic, I., & Urrutia, J. (1999). Routing with guaranteed delivery in ad hoc wireless networks. In Proceedings of 3rd ACM international workshop on Discrete algorithms and methods for mobile computing and communications, series DIALM (pp. 48–55), New York, USA.

  24. Leong, B., Mitra, S., & Liskov, B. (2005). Path vector face routing: geographic routing with local face information. In Proceedings 13th IEEE ICNP (pp. 1–12).

  25. Kuhn, F., Wattenhofer, R., & Zollinger, A. (2002). Asymptotically optimal geometric mobile ad-hoc routing. In Proceedings of 6th international workshop on Discrete algorithms and methods for mobile computing and communications—DIALM (pp. 24–33).

  26. Kuhn, F., Wattenhoffer, R., & Zollinger, A. (2003). Worst-case optimal and average-case efficient geometric ad-hoc routing. In Proceedings 4th ACM MobiHoc (pp. 267–278), New York, USA.

  27. Karp, B., & Kung, H. T. (2000). GPSR: Greedy perimeter stateless routing for wireless networks. In Proceedings 6th annual ACM/IEEE MobiCom (pp. 243–254), New York, USA.

  28. Jin, X., Zhang, R., Sun, J., & Zhang, Y. (2014). TIGHT: A geographic routing protocol for cognitive radio mobile ad hoc networks. IEEE Transactions on Wireless Communications, 13(8), 4670–4681.

    Google Scholar 

  29. Huang, H., Yin, H., Luo, Y., Zhang, X., Min, G., & Fan, Q. (2016). Three-dimensional geographic routing in wireless mobile ad hoc and sensor networks. IEEE Network, 30(2), 82–90.

    Google Scholar 

  30. Kasana, R., Kumar, S., Kaiwartya, O., Yan, W., Cao, Y., & Abdullah, A. H. (2017). Location error resilient geographical routing for vehicular ad-hoc networks. IET Intelligent Transport Systems, 11(8), 450–458.

    Google Scholar 

  31. Madasamy, B., & Balasubramanian, P. (2018). Geographical angular zone-based optimal resource allocation and efficient routing protocols for vehicular ad hoc networks. IET Intelligent Transport Systems, 12(3), 242–250.

    Google Scholar 

  32. Ko, Y. B., & Vaidya, N. H. (1998). Location-aided routing (LAR) in mobile ad hoc networks. In Proceedings of 4th annual ACM/IEEE MobiCom (vol. 6, pp. 66–75).

  33. Zhao, Z., Rosario, D., Braun, T., Cerqueira, E., Xu, H., & Huang, L. (2013). Topology and Link quality-aware geographical opportunistic routing in wireless ad-hoc networks. In 2013 9th international wireless communications and mobile computing conference (IWCMC) (pp. 1522–1527), Sardinia.

  34. Wu, X., Tong, H., Mitton, N., & Zheng, J. (2013). MEDAL: A moving direction and destination location based routing algorithm for vehicular ad hoc networks. In 2013 IEEE international conference on communications (ICC)pp. 6412–6416, Budapest.

  35. Samal, S. (2003). Mobility pattern aware routing in mobile ad hoc networks, Ph.D. Dissertation, Virginia Polytechnic Institute and State University, Blacksburg, Virginia.

  36. Chen, Q., Kanhere, S., Hassan, M., & Lan, K. C. (2006). Adaptive position update in geographic routing. In Proceedings of IEEE international conference on communications, (pp. 4046–4051).

  37. Khamayseh, Y., Darwish, O. M., & Wedian, S. A. (2009). MA-AODV: Mobility aware routing protocols for mobile ad hoc networks. In Proceedings of 4th IEEE ICSNC (pp. 25–29), Porto, Portugal.

  38. Ju, S., & Evans, J. B. (2009). Mobility-aware routing protocol for mobile ad-hoc networks. In Proceedings of IEEE international conference on communications workshops (pp. 1–6), Dresden, Germany.

  39. Stanze, O., Zitterbart, M., & Koch, C. (2006). Mobility adaptive self-parameterization of routing protocols for mobile ad hoc networks. In Proceedings of IEEE wireless communications and networking conference (pp. 276–281), Las Vegas, USA.

  40. Das, S. M., Hu, Y. C., Lee, C. S. G., & Lu, Y. H. (2007). Mobility-aware ad hoc routing protocols for networking mobile robot teams. IEEE Journal of Communication and Network, 9(3), 296–311.

    Google Scholar 

  41. Tiwary, A., et al. (2008). Mobility aware routing for the airborne network backbone. In Proceedings of IEEE MILCOM (pp. 1–7), San Diego, USA.

  42. Hu, X., Wang, J., & Wang, C. (2011). Mobility-adaptive routing for stable transmission in mobile ad hoc networks. Journal of Communications, 6(1), 79–86.

    Google Scholar 

  43. Kum, D. W., Seo, W. K., Choi, J. I., & Cho, Y. Z. (2012). Mobility adaptive hybrid routing for mobile ad hoc networks. In Proceedings of IEEE international conference on computer science and automation engineering (CSAE) (vol. 3, pp. 377–381), Zhangjiajie, China.

  44. Zhu, J., & Du, Q. (2016). Group adaptive hybrid routing algorithm based on group mobility in tactical MANET. In Proceedings of IEEE information technology, networking, electronic and automation control conference (pp. 6–10), Chongqing, China.

  45. Cadger, F., Curran, K., Santos, J., & Moffett, S. (2011). An analysis of the effects of intelligent location prediction algorithms on greedy geographic routing in mobile ad-hoc networks. In Proceedings of the 22nd Irish conference on artificial intelligence and cognitive science, Derry.

  46. Manjappa, K., & Reddy Guddeti, R. M. (2013). Mobility aware-termite: A novel bio inspired routing protocol for mobile ad-hoc networks. IET Networks, 2(4), 188–195.

    Google Scholar 

  47. Rosati, S., Kruzelecki, K., Traynard, L., & Mobile, B. R. (2013). Speed-aware routing for UAV ad-hoc networks. In 2013 IEEE globecom workshops (GC Wkshps) (pp. 1367–1373), Atlanta, GA.

  48. Rosati, S., Kruzelecki, K., Heitz, G., Floreano, D., & Rimoldi, B. (2016). Dynamic routing for flying ad hoc networks. IEEE Transactions on Vehicular Technology, 65(3), 1690–1700.

    Google Scholar 

  49. Kim, B. S., Kim, K. I., Roh, B., & Choi, H. (2018). A new routing protocol for UAV relayed tactical mobile ad hoc networks. In 2018 wireless telecommunications symposium (WTS) (pp. 1–4), Phoenix, AZ.

  50. Lim, S., Yu, C., & Das, C. R. (2001). RCast; A randomization communication scheme for improving energy efficiency in mobile ad hoc networks. In Proceedings of 25th IEEE international conference distributed computing systems (pp. 425–432).

  51. Lim, S., Yu, C., & Das, C. R. (2009). RandomCast: An energy efficient communication scheme for mobile ad hoc networks. IEEE Transactions on Mobile Computing, 8(8), 1039–1051.

    Google Scholar 

  52. Zhu, J., & Wang, X. (2011). Model, and protocol for energy-efficient routing over mobile ad hoc network. IEEE Transactions on Mobile Computing, 10(11), 1546–1557.

    Google Scholar 

  53. Costagliola, N., Lopez, P. G., Oliviero, F., & Romano, S. P. (2012). Energy- and delay-efficient routing in mobile ad hoc networks. Mobile Networks and Applications, 17(2), 281–297.

    Google Scholar 

  54. Lopez, P. G., Tinedo, R. G., & Alsina, J. M. B. (2010). Moving routing protocols to the user space in MANET Middleware. Journal of Network and Computer Applications, 33(5), 588–602.

    Google Scholar 

  55. Othmen, S., Belghith, A., Zarai, F., Obaidat, M. S., & Kamoun, L. (2014). Power and delay-aware multi-path routing protocol for ad hoc networks. In 2014 international conference on computer, information and telecommunication systems (CITS) (pp. 1–6), Jeju.

  56. Liu, W., Zhang, C., Yao, G., & Fang, Y. (2011). DELAR: A device energy load aware relaying framework for heterogeneous mobile ad hoc networks. IEEE Journal on Selected Areas in Communications, 29(8), 1572–1584.

    Google Scholar 

  57. Rango, F. D., Guerriero, F., & Fazio, P. (2012). Link stability and energy aware routing protocol in distributed wireless networks. IEEE Transactions on Parallel and Distributed Systems, 23(4), 713–726.

    Google Scholar 

  58. Rango, F. D., Guerriero, F., Marano, S., & Bruno, E. (2006). A multiobjective approach for energy consumption and link stability issues in ad hoc networks. IEEE Communications Letters, 10(1), 28–30.

    Google Scholar 

  59. Ramrekha, T. A., Talooki, V. N., Rodriguez, J., & Politis, C. (2012). Energy efficient and scalable routing protocol for extreme emergency ad hoc communications. Mobile Network and Applications, 17(2), 312–324.

    Google Scholar 

  60. Vazifehdan, J., Prasad, R. V., & Niemegeers, I. (2014). Energy-efficient reliable routing considering residual energy in wireless ad hoc networks. IEEE Transactions on Mobile Computing, 13(2), 434–447.

    Google Scholar 

  61. Das, S. K., Tripathi, S., & Burnwal, A. P. (2015). Fuzzy based energy efficient multicast routing for ad-hoc network. In Proceedings of the 2015 third international conference on computer, communication, control and information technology (C3IT) (pp. 1–5), Hooghly.

  62. Taha, A., Alsaqour, R., Uddin, M., Abdelhaq, M., & Saba, T. (2017). Energy efficient multipath routing protocol for mobile ad-hoc network using the fitness function. IEEE Access, 5, 10369–10381.

    Google Scholar 

  63. Scott, K., & Bambos, N. (1996). Routing and channel assignment for low power transmission in PCS. In Proceedings of IEEE international conference, universal personal communication.

  64. Gomez, J., Campbell, A., Naghshineh, M., & Bisdikian, C. (2003). PARO-supporting dynamic power controlled routing in wireless ad hoc networks. Journal of Wireless Networks, 9(5), 443–460.

    Google Scholar 

  65. Toh, C. K. (2001). Maximum battery life routing to support ubiquitous mobile computing in wireless ad hoc networks. IEEE Communications Magazine, 39(6), 138–147.

    Google Scholar 

  66. Bergamo, P., Giovanardi, A., Travasoni, A., Maniezzo, D., Mazzini, G., & Zorzi, M. (2004). Distributed power control for energy efficient routing in ad hoc networks. Wireless Networks, 10(1), 29–42.

    Google Scholar 

  67. Zhao, Q., Tong, L., & Counsil, D. (2007). Energy-aware adaptive routing for large-scale ad hoc networks: Protocol and performance analysis. IEEE Transactions on Mobile Computing, 6(9), 1048–1059.

    Google Scholar 

  68. Xue, Y., & Li, B. (2001). A location aided power aware routing in mobile ad hoc networks. In Proceedings of IEEE GlobeCom (pp. 2837–2841).

  69. Rudoplu, V., & Meng, T. H. (1999). inimum energy mobile wireless networks. IEEE Journal on Selected Areas in Communications, 17(8), 1333–1344.

    Google Scholar 

  70. Li, L., & Halpern, J. Y. (2004). A minimum energy path preserving topology control algorithm. IEEE Transactions on Wireless Communications, 3(3), 910–921.

    Google Scholar 

  71. Woungang, I., Obaidat, M. S., Dhurandher, S. K., Ferworn, A., & Shah, W. (2013). An ant-swarm inspired energy-efficient ad hoc on-demand routing protocol for mobile ad hoc networks. 2013 IEEE international conference on communications (ICC) (pp. 3645–3649), Budapest.

  72. Zuo, J., Dong, C., Nguyen, H. V., Ng, S. X., Yang, L. L., & Hanzo, L. (2014). Cross-layer aided energy-efficient opportunistic routing in ad hoc networks. IEEE Transactions on Communications, 62(2), 522–535.

    Google Scholar 

  73. Paraskevas, E., Manousakis, K., Das, S., & Baras, J. S. (2014). Multi-metric energy efficient routing in mobile ad-hoc networks. In 2014 IEEE military communications conference (pp. 1146–1151), Baltimore, MD.

  74. Shah, S. H., & Nahrstedt, K. (2002). Predictive location-based QoS routing in mobile ad hoc networks. In Proceedings of IEEE ICC.

  75. Stojmenovic, I., & Datta, S. (2004). Power and cost aware localized routing with guaranteed delivery in unit graph based ad hoc networks. Wireless Communications and Mobile Computing, 4(2), 175–188.

    Google Scholar 

  76. Rahman, S. M. M., Mambo, M., Inomata, A., & Okamoto, E. (2006). An anonymous on-demand position-based routing in mobile ad hoc networks. In IEEE/IPSJ international symposium on applications and the internet (pp. 300-306).

  77. Wu, X., Liu, J., Hong, X., & Bertino, E. (2008). Anonymous geo-forwarding in MANETs through location cloaking. IEEE Transactions on Parallel and Distributed Systems, 19(10), 1297–1309.

    Google Scholar 

  78. Khamayseh, Y., Obiedat, G., & Yassin, M. B. (2011). Mobility and load aware routing protocol for ad hoc networks. Journal of King Saud University-Computer and Information Sciences, 23(2), 105–113.

    Google Scholar 

  79. Tan, W. C. W., & Bose, S. K. (2012). Power and mobility aware routing in wireless ad hoc network. IET Communications, 6(11), 1425–1437.

    MathSciNet  Google Scholar 

  80. Tan, W. C. W., Bose, S. K., & Cheng, T. H. (2012). Power and mobility aware routing in wireless ad hoc networks. IET Communications, 6(11), 1425–1437.

    MathSciNet  Google Scholar 

  81. Mahmoud, M. S. B., & Larrieu, N. (2013). An ADS-B based secure geographical routing protocol for aeronautical ad hoc networks. In 2013 IEEE 37th annual computer software and applications conference workshops (pp. 556-562), Japan.

  82. Zhao, Z., Braun, T., Rosario, D., & Cerqueira, E. (2014). CAOR: Context-aware adaptive opportunistic routing in mobile ad-hoc networks. In 2014 7th IFIP wireless and mobile networking conference (WMNC) (pp. 1–8), Vilamoura.

  83. Wang, H. M., Zhang, Y., Ng, D. W. K., & Lee, M. H. (2018). Secure routing with power optimization for ad-hoc networks. IEEE Transactions on Communications, 66, 4666–4679.

    Google Scholar 

  84. Hu, Y. C., Perrig, A., & Johnson, D. B. (2002). Ariadne: A secure on-demand routing protocol for ad hoc networks. In Proceedings of 8th annual ACM international conference on mobile computing and networking.

  85. Hu, Y. C., Perrig, A., & Johnson, D. B. (2002). Sead: Secure efficient distance vector routing for mobile wireless ad hoc networks. In Proceedings of 4th IEEE workshop on mobile computing systems and applications (pp. 3–13).

  86. Papadimitratos, P., & Haas, Z. J. (2002) Secure routing for mobile ad hoc networks. In Proceedings of SCS communication networks and distributed systems modeling and simulation conference (pp. 27–31).

  87. Zapata, M., & Asokan, N. (2002). Securing ad hoc routing protocols. In Proceedings of ACM workshop on wireless security (WiSe).

  88. Sanzgiri, K., Dahill, B., Levine, B., Shields, C., & Belding-Royer, E. (2002). A secure routing protocol for ad hoc networks. In Proceedings of 10th IEEE international conference on network protocols, (pp. 78–87).

  89. Ghosh, U., & Datta, R. (2011). Identity based secure AODV and TCP for mobile ad hoc networks. In Proceedings of ACM ACWR (pp. 339–346).

  90. Yi, S., Naldurg, P., & Kravets, R. (2002). Integrating quality of protection into ad hoc routing protocols. In Proceedings of 6th world multi conference on systematic, cybernetics, and informatics (pp. 286–292).

  91. Nekkanti, R. K., & Lee, C. W. (2004). Trust based adaptive on demand ad hoc routing protocol. In Proceedings of 42nd annual southeast regional conference (pp. 88–93).

  92. Li, H., & Singhal, M. (2006). A secure routing protocol for wireless ad hoc networks. In Proceedings of 39th HICSS-39 (pp. 225–234).

  93. Mangrulkar, R. S., & Atique, M. (2010). Trust based secured ad hoc on demand distance vector routing protocol for mobile ad hoc network. In Proceedings of 6th international conference on wireless communication and sensor networks (WCSN) (pp. 1–4).

  94. Yan, Z., Zhang, P., & Virtanen, T. (2003). Trust evaluation based security solution in ad hoc networks. In Proceedings of 7th nordic workshop on secure IT systems (NORDSEC 2003).

  95. Saha, H. N., Bhattacharya, D., & Banerjee, P. K. (2011). Fidelity index based on demand (FIBOD) secure routing in mobile ad hoc network. In Proceedings of PDCTA (vol. 203, no. 2, pp. 615–627), Berlin: Springer.

  96. Boukerche, A., El-Khatib, K., Xu, L., & Korba, L. (2004). An efficient secure distributed anonymous routing protocol for mobile and wireless ad hoc networks. Computer Communications, 28(10), 1193–1203.

    Google Scholar 

  97. Clude, Davis, R., & Maheswaran. (2007). A secure MANET routing protocol with resilience against byzantine behaviors of malicious or selfish nodes, In Proceedings of international conference on advanced information networking and application workshop (pp. 19–26).

  98. Yao, J., Feng, S., Zhou, X., & Liu, Y. (2016). Secure routing in multihop wireless ad-hoc networks with decode-and-forward relaying. IEEE Transactions on Communications, 64(2), 753–764.

    Google Scholar 

  99. Xu, Y., Liu, J., Shen, Y., Jiang, X., & Taleb, T. (2016). Security/QoS-aware route selection in multi-hop wireless ad hoc networks. In 2016 IEEE international conference on communications (ICC) (pp. 1–6), Kuala Lumpur.

  100. Ogawa, E., Nakamura, S., & Takizawa, M. (2017). A trustworthiness-based ad-hoc routing protocol in wireless networks. In 2017 IEEE 31st international conference on advanced information networking and applications (AINA) (pp. 1162–1168), Taipei.

  101. Jeya Kumar, M. K., & Rajesh, R. S. (2009). Performance analysis of MANET routing protocols in different mobility models. IJCSNS International Journal of Computer Science and Network Security, 9(2), 22–29.

    Google Scholar 

  102. Ade, S. A., & Tijare, P. A. (2010). Performance comparison of AODV, DSDV, OLSR and DSR routing protocols in mobile ad hoc networks. International Journal of Information Technology and Knowledge Management, 2(2), 545–548.

    Google Scholar 

  103. Razouqi, Q., Boushehri, A., Gaballah, M., & Alsaleh L. (2013). Extensive simulation performance analysis for DSDV, DSR and AODV MANET routing protocols. In 27th international conference on advanced information networking and applications workshops (WAINA) (pp. 335–342).

  104. Islam, M. S., Hider, M. N., & Letonmiah, M. T. (2011). An extensive comparison among DSDV, DSR and AODV protocols in MANET. International Journal of Computer Applications, 15(2), 22–24.

    Google Scholar 

  105. Jain, R., Khairnar, N., & Shrivastava, L. (2011). Comparative study of three mobile ad-hoc network routing protocols under different traffic source, In Proceedings of international conference on communication systems and network technologies, IEEE (pp. 104–107).

  106. Arefin, M., Tawhiddul, M., & Toyoda, I. (2012). Performance analysis of mobile ad-hoc networks routing protocols. In Proceedings of international conference on informatics and vision, IEEE (pp. 535–539).

  107. Naqvi, N., Gupta, U., Kochhar, S., & Agarwal, R. (2011). Mobile ad hoc network routing protocols on the basis of energy consumption. In Proceedings of the 5th national conference INDIACom.

  108. Huhtonen, A. (2004). Comparing AODV and OLSR routing protocols. In HUT T-110.551 seminar on internetworking (pp. 1–9), Sjokulla, Finland.

  109. Huang, G., Zhu, Q., & Siew, C. (2006). Extreme learning machine: Theory and applications. Neurocomputing, 70(1–3), 489–501.

    Google Scholar 

  110. Sarkar, S., & Datta, R. (2012). A trust based protocol for energy-efficient routing in self-organized MANETs, In Proceedings of annual IEEE India conference (INDICON) (pp. 1084–1089), Kochi.

  111. Marchang, N., & Datta, R. (2012). Light-weight trust-based routing protocol for mobile ad-hoc networks. IET Information Security, 6(2), 77–83.

    Google Scholar 

  112. Heereman, F., et al. (2012). Path loss model and prediction of range, power and throughput for 802.11n in large conference rooms. International Journal of Electronics and Communications, 66(7), 561–568.

    Google Scholar 

  113. Wu, B., Chen, J., Wu, J., & Cardei, M. (2007). A survey of attacks and countermeasures in mobile ad hoc networks. In T. Karygiannis & L. Owens (Eds.), Wireless network security (pp. 103–135). New York: Springer.

    Google Scholar 

  114. ns-2, [Online], Available:https://www.isi.edu/nsnam/ns/ns-documentation.html. Retrieved 15 Aug 2017.

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Tripathy, B.K., Jena, S.K., Bera, P. et al. An Adaptive Secure and Efficient Routing Protocol for Mobile Ad Hoc Networks. Wireless Pers Commun 114, 1339–1370 (2020). https://doi.org/10.1007/s11277-020-07423-x

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