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A New QoS Architecture for IEEE 802.16 and IEEE 802.11e Standards

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Abstract (2. Language): 
There are several challenging issues to design a network when the integrated WiMAX/Wi-Fi networks are constructed. Literature shows that mostly of the existing researches may not have a strategy to map the QoS between WiMAX and WiFi networking. Therefore, this paper aims to propose new integration WiMAX/Wi-Fi architecture to improve the QoS. In this proposed architecture, a new strategy to map the QoS between WiMAX and WiFi networking will be designed. We study our integration WiMAX/Wi-Fi module when the WiMAX SSs send or receive data to or from Wi-Fi STAs. QualNet version 5.0.2 is used to perform this simulation. The simulation results indicate that when the number of SSs or STAs in our integration WiMAX/Wi-Fi network increases, the average jitter, the average end-to-end delay and the throughput are increased. Sending data from WiMAX SSs to Wi-Fi STAs may have higher average jitter, average end-to-end delay and throughput than sending data from Wi-Fi STAs to WiMAX SSs.
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REFERENCES

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[1] Ali Mohammed Aqlan, (2014). "Modeling and Verification of 802.16 MAC Protocol using Higher-Order Petri Nets", IJCNIS, vol.6, no.4, pp.21-28,
[2] Alotaibi, Y. (2015). A new multi-path Forward Error Correction (FEC) control scheme with path interleaving for video streaming. In Industrial Electronics and Applications (ICIEA), 2015 IEEE 10th Conference on (pp. 1655-1660). IEEE.
[3] Alotaibi, Y. (2015). A performance analysis of different coding and modulation schemes in WiMAX. In Industrial Electronics and Applications (ICIEA), 2015 IEEE 10th Conference on (pp. 1645-1649). IEEE.
[4] Alotaibi, Y. (2015). "A Performance Analysis of Different Scheduling Schemes in WiMAX". World Academy of Science, Engineering and Technology, International Journal of Computer, Electrical, Automation, Control and Information Engineering Vol:9, No:3, pp 716-720.
[5] C. Cicconetti, A. Erta, L. Lenzini and E. Mingozzi, Performance evaluation of the IEEE 802.16 MAC for QoS support, IEEE Transactions on Mobile Computing, 6 (2007), pp. 26-38.
[6] C. So-In, R. Jain, and A.-K. Tamimi, (2009). “Scheduling in IEEE802.16e mobile WiMAX networks: key issues and a survey, ”IEEE Journal on Selected Areas in Communications, 27 (2), 156–171.
[7] Cecília A.C. César, Author Vitae, and Solon V. CarvalhoAuthor Vitae. (2014). " An analytical framework for distributed coordinated scheduling in IEEE 802.16 wireless mesh networks" . Ad Hoc Networks. VOl. 13, Part A, 181–190.
[8] Dar, K., Bakhouya, M., Gaber, J., Wack, M., & Lorenz, P. (2010). Wireless communication technologies for ITS applications [topics in automotive networking]. Communications Magazine, IEEE, 48(5), 156-162.
[9] Dehbi, Y., Benaboud, H., & Mikou, N. (2013). A geometric distribution for backoff time in IEEE 802.11 DCF: an analytical study. International Journal of Communication Networks and Information Security, 5(3), pp. 192-200.
[10] Fakhar Uddin Ahmed, Shikhar Kumar Sarma, (2014). "Enhancing QoS Through Dynamic and Fare AP Selection in a Wireless LAN", IJCNIS, vol.6, no.2, pp.23-29,
[11] Gao, D., Cai, J., & Ngan, K. N. (2005). Admission control in IEEE 802.11 e wireless LANs. Network, IEEE, 19(4), 6-13.
[12] Harpreet Kaur, Manoj Kumar, Ajay K. Sharma, Harjit P. Singh,(2016). "Implementation of SRRC Filter in Mobile WiMax with DWT Based OFDM System", International Journal of Computer Network and Information Security(IJCNIS), Vol.8, No.4, pp.62-69.
[13] Hui, J., & Devetsikiotis, M. (2005). A unified model for the performance analysis of IEEE 802.11 e EDCA. Communications, IEEE Transactions on, 53(9), 1498-1510.
[14] IEEE Standard for Local and Metropolitan Area Networks Part 16: Air Interface for Fixed and Mobile Broadband Wireless Access Systems Amendment 2: Physical and Medium Access Control Layers for Combined Fixed and Mobile Operation in Licensed Bands and Corrigendum 1, IEEE Std 802.16e-2005 and IEEE Std 802.16-2004/Cor 1-2005 (Amendment and Corrigendum to IEEE Std 802.16-2004) (2006), pp. 0_1-822.
[15] IEEE Standard for Local and Metropolitan Area Networks Part 16: Air Interface for Fixed Broadband Wireless Access Systems, IEEE Std 802.16-2004 (Revision of IEEE Std 802.16-2001) (2004), pp. 0_1-857.
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International Journal of Science and Engineering Investigations, Volume 6, Issue 65, June 2017 9
www.IJSEI.com Paper ID: 66517-01
ISSN: 2251-8843
[16] J. Lu and M. Ma, (2010). “A cross-layer elastic CAC and holistic opportunistic scheduling for QoS support in WiMAX,” Computer Networks, 54 (7). 1155 – 1168.
[17] Kuo-Feng Huang, Shih-Jung Wu, (2013). Real-time-service-based Distributed Scheduling Scheme for IEEE 802.16j Networks. Journal of Networks, 8 (3), 513-517.
[18] Liu, C.Y., Fu, B., Huang, H.J. (2014). Delay minimization and priority scheduling in wireless mesh networks. Wireless Networks pp. 1–11.
[19] Mangold, S., Choi, S., Hiertz, G. R., Klein, O., & Walke, B. (2003). Analysis of IEEE 802.11 e for QoS support in wireless LANs. Wireless Communications, IEEE, 10(6), 40-50.
[20] Naeini, V.S. (2014). Performance analysis of WiMAX–based wireless mesh networks using an M/D/1 queuing model. Int. J. Wirel. Mobile Comp. 7(1), 35–47.
[21] Nandiraju, N., Nandiraju, D., Santhanam, L., He, B., Wang, J., & Agrawal, D. P. (2007). Wireless mesh networks: current challenges and future directions of web-in-the-sky. Wireless Communications, IEEE, 14(4), 79-89.
[22] Ni, Q. (2005). Performance analysis and enhancements for IEEE 802.11 e wireless networks. Network, IEEE, 19(4), 21-27.
[23] Pontes, A. B., Silva, D. D. P., Jailton Jr, J., Rodrigues Jr, O., & Dias, K. L. (2008). Handover management in integrated WLAN and mobile WiMAX networks. Wireless Communications, IEEE, 15(5), 86-95.
[24] QualNet Simulator Home. [cited 2015 02/02]; Available from: http://www.scalable-networks.com/.
[25] Şekercioğlu, Y. A., Ivanovich, M., & Yeğin, A. (2009). A survey of MAC based QoS implementations for WiMAX networks. Computer Networks, 53(14), 2517-2536.
[26] Stephen Atambire Nsoh and Robert Benkoczi, (2013). ”Routing and Link Scheduling with QoS in IEEE 802.16 Mesh Networks”, IEEEWireless Communicationsand Networking Conference, (WCNC) NETWORKS, 233-238.
[27] Mostafavi Mohammad. (2016). A Novel Burst Mapping Algorithm for WiMAX with DL-MAP Reduction Approach. International Journal of Science and Engineering Investigations, 5(55), 115-122.
[28] Touil, H., & Fakhri, Y. (2014). A fuzzy-based QoS Maximization protocol for WiFi Multimedia (IEEE 802.11 e) Ad hoc
Networks. International Journal of Communication Networks and Information Security, 6(3), pp. 217-225.
[29] Vergados, D. J., Vergados, D. D., & Douligeris, C. (2009). DPS: An architecture for VBR scheduling in IEEE 802.11 e HCCA networks with multiple access points. Mobile Networks and Applications, 14(6), 744-759.
[30] Yazdani, M., Kamali, M., Moghim, N., & Ghazvini, M. (2016). A fair access mechanism based on TXOP in IEEE 802.11 e wireless networks. International Journal of Communication Networks and Information Security, 8(1), pp. 11-17.
[31] Zhang, Y., Ansari, N., & Tsunoda, H. (2010). Wireless telemedicine services over integrated IEEE 802.11/WLAN and IEEE 802.16/WiMAX networks. Wireless Communications, IEEE, 17(1), 30-36.
[32] Zhao, L., Cong, L., Liu, F., Yang, K., & Zhang, H. (2011). Joint time-frequency-power resource allocation for low-medium-altitude platforms-based WiMAX networks. IET communications, 5(7), 967-974.
[33] Zhu, R., Qin, Y., & Lai, C. F. (2011). Adaptive packet scheduling scheme to support real-time traffic in WLAN mesh networks. KSII Transactions on Internet and Information Systems (TIIS), 5(9), 1492-1512.
[34] Zhu, R., W. Shu, T. Mao, and T. Deng, (2013). ”Enhanced MAC protocol to support multimedia traffic in cognitive wireless mesh networks,” Multi. Tool. App. 67 (1), pp 269-288.

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