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An efficient route scheduling mechanism for WiMAX network

Published online by Cambridge University Press:  03 October 2014

Ming-Huang Guo
Affiliation:
Department of Information Management, Shih-Hsin University, #1, Lane 17, Mu-Cha Road, Sec. 1, Taipei 116, Taiwan; e-mail: [email protected]
Der-Jiunn Deng
Affiliation:
Department of Computer Science and Information Engineering, National Changhua University of Education, No. 2, Shi-Da Road, Changhua 500, Taiwan; e-mail: [email protected]
Horng-Twu Liaw
Affiliation:
Department of Information Management, Shih-Hsin University, #1, Lane 17, Mu-Cha Road, Sec. 1, Taipei 116, Taiwan; e-mail: [email protected]
Jong Hyuk Park
Affiliation:
Department of Computer Science and Engineering, Seoul National University of Science and Technology, 1 Gwanak-ro, Gwanak-gu, Seoul 151-744, Korea; e-mail: [email protected]

Abstract

WiMAX was proposed as the new wireless network standard in recent years. In the wide cover area of WiMAX environment, there are many nodes and interference. In order to obtain the efficiency, the avoidance to the interference is important. In this paper, we propose a two-tier cluster-based route scheduling mechanism on WiMAX Mesh mode. It achieves both fairness and efficiency inside and outside the cluster. The simulation result shows that our mechanism provides great improvement in average delay time and throughput than other research.

Type
Articles
Copyright
© Cambridge University Press 2014 

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References

Cao, M., Ma, W. & Wang, X. 2005. Modeling and performance analysis of the distributed scheduler in IEEE 802.16 Mesh mode. In The ACM International Symposium on Mobile Ad Hoc Networking and Computing, 78–89.Google Scholar
Cao, M., Raghunathan, V. & Kumar, P. R. 2006. A tractable algorithm for fair and efficient uplink scheduling of multi-hop WiMAX Mesh networks. In The IEEE Workshop on Wireless Mesh Networks, 93–100.Google Scholar
Chen, J., Chi, C. & Guo, Q. 2006. An odd-even alternation mechanism for centralized scheduling in WiMAX Mesh network. In The IEEE Global Telecommunications Conference, 1–6.Google Scholar
Chieh, T. T. & Wang, C. Y. 2007. Routing and admission control in IEEE 802.16 distributed Mesh networks. In The International Conference on Wireless and Optical Communications Networks, 1–5.Google Scholar
Du, P., Jia, W., Huang, L. & Lu, W. 2007. Centralized scheduling and channel assignment in multi-channel single-transceiver WiMAX Mesh network. In Wireless Communications and Networking Conference, 1734–1739.Google Scholar
Fu, L., Cao, Z. & Fan, P. 2005. Spatial reuse in IEEE 802.16 based wireless Mesh networks. In The IEEE International Symposium on Communications and Information Technology, 1358–1361.Google Scholar
Han, B., Jia, W. & Lin, L. 2007. Performance evaluation of scheduling in IEEE 802.16 based wireless Mesh networks. In Computer Communication, 782–792.Google Scholar
Kim, D. & Ganz, A. 2005. Fair and efficient multihop scheduling algorithm for IEEE 802.16 BWA systems. In International Conference on Broadband Communications, Networks, and Systems, 895–901.Google Scholar
Salem, N. B. & Hubaux, J. P. 2005. A fair scheduling for wireless Mesh networks. In The IEEE Workshop on Wireless Mesh Networks, Section III.Google Scholar
Sayenko, A., Alanen, O. & Hämäläinen, T. 2007. Scheduling solution for the IEEE 802.16 Base Station. In Computer Networks.Google Scholar
Wang, B. & Mutka, M. 2008. Path selection for mobile stations in IEEE 802.16 multi-hop relay networks. In World of Wireless, Mobile and Multi-Media Networks, 1–8.Google Scholar
Wang, J., Jia, W. & Huang, L. 2008. An efficient centralized scheduling algorithm for IEEE 802.16 multi-radio Mesh networks. In The 2nd International Conference on Ubiquitous Information Management and Communication, 1–5.Google Scholar
Wei, H., Ganguly, S., Izmailov, R. & Haas, Z. 2005. Interference-aware IEEE 802.16 WiMAX Mesh networks. In The IEEE Vehicular Technology Conference, 3102–3106.Google Scholar
Xergias, S., Passas, N. & Salkintzis, A. K. 2008. Centralized resource allocation for multimedia traffic in IEEE 802.16 Mesh networks. Proceedings of the IEEE 96, 1, 5463.CrossRefGoogle Scholar
Yang, C., Liu, Z. & Yang, Y. 2006. A centralized scheduling algorithm based on multi-path routing in WiMAX Mesh network. In International Conference on Wireless Communications Networking and Mobile Computing, 1–4.Google Scholar