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Erschienen in: Wireless Personal Communications 2/2017

02.11.2016

Modeling and Analysis of the TXOPLimit Efficiency with the Packet Fragmentation in an IEEE 802.11e-EDCA Network Under Noise-Related Losses

verfasst von: Mohand Yazid, Djamil Aïssani, Louiza Bouallouche-Medjkoune

Erschienen in: Wireless Personal Communications | Ausgabe 2/2017

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Abstract

Analytical modeling and performance study of the Enhanced Distributed Channel Access (EDCA) function of the IEEE 802.11e standard has been the topic of various works available in the literature. Nevertheless, the Packet Fragmentation (PF) conceived by the IEEE 802.11 work group for decreasing the effect of noise-related losses on the performances of IEEE 802.11 networks, has not at all been taken into account in the analytical models proposed for evaluating the performance of the Opportunity Transmission Limit (TXOPLimit), which is a key parameter of the EDCA function for a Differentiated Service in an IEEE 802.11e network. While, the PF can be employed with the TXOPLimit, in order to boost the efficiency of the Contention Free Burst of both Voice and Video streams under noise-related losses. In this paper, we aim at extending the Markov chain models proposed for the IEEE 802.11e-EDCA network, in order to especially model the TXOPLimit, the PF and the Packet Error Rate. Besides, we elaborate a mathematical model to compute the saturation throughput of Access Categories, Voice, Video, Best Effort and Background. The achieved numerical results indicate, for the first time that, the PF permits boosting the TXOPLimit efficiency under noise-related losses. Thus, the saturation throughputs of both Voice and Video access categories are substantially enhanced.

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Literatur
1.
Zurück zum Zitat IEEE 802.11 Standard Part II. (1999). Wireless LAN medium access control (MAC) and physical (PHY) specifications. IEEE 802.11 Standard Part II. (1999). Wireless LAN medium access control (MAC) and physical (PHY) specifications.
2.
Zurück zum Zitat Kosek-Szott, K., Natkaniec, M., & Pach, A. R. (2011). A simple but accurate throughput model for IEEE 802.11 EDCA in saturation and non-saturation conditions. Computer Networks, 55(3), 622–635.CrossRefMATH Kosek-Szott, K., Natkaniec, M., & Pach, A. R. (2011). A simple but accurate throughput model for IEEE 802.11 EDCA in saturation and non-saturation conditions. Computer Networks, 55(3), 622–635.CrossRefMATH
3.
Zurück zum Zitat IEEE 802.11e Standard Part II. (2005). Wireless LAN medium access control (MAC) and physical (PHY) specifications. Amendement 8: Medium access control (MAC) quality of service enhancements. IEEE 802.11e Standard Part II. (2005). Wireless LAN medium access control (MAC) and physical (PHY) specifications. Amendement 8: Medium access control (MAC) quality of service enhancements.
4.
Zurück zum Zitat Lee, Y., Lee, K. S., & Jang, J. M. (2007). Saturation throughput analysis of IEEE 802.11e EDCA (pp. 1223–1232). Berlin/Heidelberg: Springer. Lee, Y., Lee, K. S., & Jang, J. M. (2007). Saturation throughput analysis of IEEE 802.11e EDCA (pp. 1223–1232). Berlin/Heidelberg: Springer.
5.
Zurück zum Zitat Al-Karaki, J. N., & Chang, J. M. (2004). Quality of service support in IEEE 802.11 wireless ad hoc networks. Ad Hoc Networks, 2(3), 265–281.CrossRef Al-Karaki, J. N., & Chang, J. M. (2004). Quality of service support in IEEE 802.11 wireless ad hoc networks. Ad Hoc Networks, 2(3), 265–281.CrossRef
6.
Zurück zum Zitat Hamidian, A., & Korner, U. (2006). An enhancement to the IEEE 802.11e EDCA providing QoS guarantees. Telecommunication Systems, 31(2–3), 195–212.CrossRef Hamidian, A., & Korner, U. (2006). An enhancement to the IEEE 802.11e EDCA providing QoS guarantees. Telecommunication Systems, 31(2–3), 195–212.CrossRef
7.
Zurück zum Zitat Fan, Z. (2007). Throughput and QoS optimization for EDCA-based IEEE 802.11 WLANs. Wireless Personal Communications, 43(4), 1279–1290.CrossRef Fan, Z. (2007). Throughput and QoS optimization for EDCA-based IEEE 802.11 WLANs. Wireless Personal Communications, 43(4), 1279–1290.CrossRef
8.
Zurück zum Zitat Gallardo, J., Medina, P., & Zhuang, W. (2007). QoS mechanisms for the MAC protocol of IEEE 802.11 WLANs. Wireless Networks, 13(3), 335–349.CrossRef Gallardo, J., Medina, P., & Zhuang, W. (2007). QoS mechanisms for the MAC protocol of IEEE 802.11 WLANs. Wireless Networks, 13(3), 335–349.CrossRef
9.
Zurück zum Zitat Lee, J. F., Liao, W., & Chen, M. C. (2007). A differentiated service model for enhanced distributed channel access (EDCA) of IEEE 802.11e WLANs. Mobile Networks and Applications, 12(1), 69–77.CrossRef Lee, J. F., Liao, W., & Chen, M. C. (2007). A differentiated service model for enhanced distributed channel access (EDCA) of IEEE 802.11e WLANs. Mobile Networks and Applications, 12(1), 69–77.CrossRef
10.
Zurück zum Zitat Ge, Y., Hou, J. C., & Choi, S. (2007). An analytical study of tunning systems parameters in IEEE 802.11e enhanced distributed channel access. Computer Networks, 51(8), 1955–1980.CrossRefMATH Ge, Y., Hou, J. C., & Choi, S. (2007). An analytical study of tunning systems parameters in IEEE 802.11e enhanced distributed channel access. Computer Networks, 51(8), 1955–1980.CrossRefMATH
11.
Zurück zum Zitat Lin, W. Y., & Wu, J. S. (2007). Modified EDCF to improve the performance of IEEE 802.11e WLAN. Computer Communications, 30(4), 841–848.CrossRef Lin, W. Y., & Wu, J. S. (2007). Modified EDCF to improve the performance of IEEE 802.11e WLAN. Computer Communications, 30(4), 841–848.CrossRef
12.
Zurück zum Zitat Hamidian, A., & Korner, U. (2008). Extending EDCA with distributed ressource reservation for QoS guarantees. Telecommunication Systems, 39(3–4), 187–194.CrossRef Hamidian, A., & Korner, U. (2008). Extending EDCA with distributed ressource reservation for QoS guarantees. Telecommunication Systems, 39(3–4), 187–194.CrossRef
13.
Zurück zum Zitat Yu, J., Choi, S., & Qiao, D. (2009). Analytical study of TCP performance over IEEE 802.11e WLANs. Mobile Networks and Applications, 14(4), 470–485.CrossRef Yu, J., Choi, S., & Qiao, D. (2009). Analytical study of TCP performance over IEEE 802.11e WLANs. Mobile Networks and Applications, 14(4), 470–485.CrossRef
14.
Zurück zum Zitat Varposhti, M., & Movahhedinia, N. (2009). Supporting QoS in IEEE 802.11e wireless LANs over fading channel. Computer Communications, 32(5), 985–991.CrossRef Varposhti, M., & Movahhedinia, N. (2009). Supporting QoS in IEEE 802.11e wireless LANs over fading channel. Computer Communications, 32(5), 985–991.CrossRef
15.
Zurück zum Zitat Thangaraj, A., Zeng, Q. A., & Li, X. (2010). Performance analysis of the IEEE 802.11e wireless networks with TCP ACK prioritization. Telecommunication Systems, 45(4), 303–312.CrossRef Thangaraj, A., Zeng, Q. A., & Li, X. (2010). Performance analysis of the IEEE 802.11e wireless networks with TCP ACK prioritization. Telecommunication Systems, 45(4), 303–312.CrossRef
16.
Zurück zum Zitat Cetinkaya, C. (2010). Service differentiation mechanisms for WLANs. Computer Networks, 8(1), 46–62. Cetinkaya, C. (2010). Service differentiation mechanisms for WLANs. Computer Networks, 8(1), 46–62.
17.
Zurück zum Zitat Lagkas, T. D., Stratogiannis, D. G., & Chatzimisios, P. (2013). Modeling and performance analysis of an alternative to IEEE 802.11e hybrid control function. Telecommunication Systems, 52(4), 1961–1976.CrossRef Lagkas, T. D., Stratogiannis, D. G., & Chatzimisios, P. (2013). Modeling and performance analysis of an alternative to IEEE 802.11e hybrid control function. Telecommunication Systems, 52(4), 1961–1976.CrossRef
18.
Zurück zum Zitat Korner, U., Hamidian, A., Pioro, M., & Nyberg, C. (2011). A distributed MAC scheme to achieve QoS in ad hoc networks. Annals of Telecommunications, 66(9–10), 491–500.CrossRef Korner, U., Hamidian, A., Pioro, M., & Nyberg, C. (2011). A distributed MAC scheme to achieve QoS in ad hoc networks. Annals of Telecommunications, 66(9–10), 491–500.CrossRef
19.
Zurück zum Zitat Camps-Mur, D., Gomony, M. D., Perez-Costa, X., & Sallent-Ribes, S. (2012). Leveraging 802.11n frame aggregation to enhance QoS and power consumption in Wi-Fi networks. Computer Networks, 56(12), 2896–2911.CrossRef Camps-Mur, D., Gomony, M. D., Perez-Costa, X., & Sallent-Ribes, S. (2012). Leveraging 802.11n frame aggregation to enhance QoS and power consumption in Wi-Fi networks. Computer Networks, 56(12), 2896–2911.CrossRef
20.
Zurück zum Zitat Jeong, S., Kim, M., Ryu, J., Jo, D., & Han, K. (2004). An analytical model for throughput of IEEE 802.11e EDCA (pp. 304–312). Berlin/Heidelberg: Springer. Jeong, S., Kim, M., Ryu, J., Jo, D., & Han, K. (2004). An analytical model for throughput of IEEE 802.11e EDCA (pp. 304–312). Berlin/Heidelberg: Springer.
21.
Zurück zum Zitat Kong, Z. N., Tsang, D. H. K., Bensaou, B., & Gao, D. (2004). Performance analysis of IEEE 802.11e contention-based channel access. IEEE Journal on Selected Areas in Communications, 22(10), 2095–2106.CrossRef Kong, Z. N., Tsang, D. H. K., Bensaou, B., & Gao, D. (2004). Performance analysis of IEEE 802.11e contention-based channel access. IEEE Journal on Selected Areas in Communications, 22(10), 2095–2106.CrossRef
22.
Zurück zum Zitat Vassis, D., & Kormentzas, G. (2005). Delay performance analysis and evaluation of IEEE 802.11e EDCA in finite load conditions. Wireless Personal Communications, 34(1–2), 29–43.CrossRef Vassis, D., & Kormentzas, G. (2005). Delay performance analysis and evaluation of IEEE 802.11e EDCA in finite load conditions. Wireless Personal Communications, 34(1–2), 29–43.CrossRef
23.
Zurück zum Zitat Xiao, Y. (2005). Performance analysis of priority schemes for IEEE 802.11 and IEEE 802.11e wireless LANs. IEEE Transactions on Wireless Communications, 4(4), 1506–1515.CrossRef Xiao, Y. (2005). Performance analysis of priority schemes for IEEE 802.11 and IEEE 802.11e wireless LANs. IEEE Transactions on Wireless Communications, 4(4), 1506–1515.CrossRef
24.
Zurück zum Zitat Banchs, A., & Vollero, L. (2006). Throughput analysis and optimal configuration of 802.11e EDCA. Computer Networks, 50(11), 1749–1768.CrossRefMATH Banchs, A., & Vollero, L. (2006). Throughput analysis and optimal configuration of 802.11e EDCA. Computer Networks, 50(11), 1749–1768.CrossRefMATH
25.
Zurück zum Zitat Tao, Z., & Panwar, S. (2006). Throughput and delay analysis for the IEEE 802.11e enhanced distributed channel access. IEEE Transactions on Communications, 54(4), 596–603.CrossRef Tao, Z., & Panwar, S. (2006). Throughput and delay analysis for the IEEE 802.11e enhanced distributed channel access. IEEE Transactions on Communications, 54(4), 596–603.CrossRef
26.
Zurück zum Zitat Banchs, A., & Serrano, P. (2007). Revising 802.11e EDCA performance analysis. Wireless Personal Communications, 43(4), 1145–1149.CrossRef Banchs, A., & Serrano, P. (2007). Revising 802.11e EDCA performance analysis. Wireless Personal Communications, 43(4), 1145–1149.CrossRef
27.
Zurück zum Zitat Serrano, P., Banchs, A., & Azcorra, A. (2007). A throughput and delay model for IEEE 802.11e EDCA under non saturation. Wireless Personal Communications, 43(2), 467–479.CrossRef Serrano, P., Banchs, A., & Azcorra, A. (2007). A throughput and delay model for IEEE 802.11e EDCA under non saturation. Wireless Personal Communications, 43(2), 467–479.CrossRef
28.
Zurück zum Zitat Xiong, L., & Mao, G. (2007). Saturated throughput analysis of IEEE 802.11e EDCA. Computer Networks, 51(11), 3047–3068.CrossRefMATH Xiong, L., & Mao, G. (2007). Saturated throughput analysis of IEEE 802.11e EDCA. Computer Networks, 51(11), 3047–3068.CrossRefMATH
29.
Zurück zum Zitat Patras, P., Banchs, A., & Serrano, P. (2009). A control theoretic for throughput optimization in IEEE 802.11e EDCA WLANs. Mobile Networks and Applications, 14(6), 697–708.CrossRef Patras, P., Banchs, A., & Serrano, P. (2009). A control theoretic for throughput optimization in IEEE 802.11e EDCA WLANs. Mobile Networks and Applications, 14(6), 697–708.CrossRef
30.
Zurück zum Zitat Pan, S. W., & Wu, J. S. (2009). Throughput analysis of IEEE 802.11 EDCA under heterogeneous traffic. Computer Communications, 32(5), 935–942.CrossRef Pan, S. W., & Wu, J. S. (2009). Throughput analysis of IEEE 802.11 EDCA under heterogeneous traffic. Computer Communications, 32(5), 935–942.CrossRef
31.
Zurück zum Zitat Hu, J., Min, G., & Woodward, M. E. (2011). Performance analysis of the TXOP burst transmission scheme in single-hop ad hoc networks with unbalanced stations. Computer Communications, 34(13), 1593–1603.CrossRef Hu, J., Min, G., & Woodward, M. E. (2011). Performance analysis of the TXOP burst transmission scheme in single-hop ad hoc networks with unbalanced stations. Computer Communications, 34(13), 1593–1603.CrossRef
32.
Zurück zum Zitat Min, G., Hu, J., & Woodward, M. E. (2011). Modeling and analysis of TXOP differentiation in infrastructure-based WLANs. Computer Networks, 55(11), 2545–2557.CrossRef Min, G., Hu, J., & Woodward, M. E. (2011). Modeling and analysis of TXOP differentiation in infrastructure-based WLANs. Computer Networks, 55(11), 2545–2557.CrossRef
33.
Zurück zum Zitat Liu, X., & Saadawi, T. N. (2011). IEEE 802.11e (EDCA) analysis in the presence of hidden stations. Journal of Advanced Research, 2(3), 219–225.CrossRef Liu, X., & Saadawi, T. N. (2011). IEEE 802.11e (EDCA) analysis in the presence of hidden stations. Journal of Advanced Research, 2(3), 219–225.CrossRef
34.
Zurück zum Zitat Hu, J., Min, G., Jia, W., & Woodward, M. E. (2012). Comprehensive QoS analysis of enhanced distributed channel access in wireless local area networks. Information Sciences, 214, 20–34.CrossRef Hu, J., Min, G., Jia, W., & Woodward, M. E. (2012). Comprehensive QoS analysis of enhanced distributed channel access in wireless local area networks. Information Sciences, 214, 20–34.CrossRef
35.
Zurück zum Zitat Yao, Y. C., Wen, J. H., & Weng, C. E. (2013). The performance evaluation of IEEE 802.11e for QoS support in wireless LANs. Wireless Personal Communications, 69(1), 413–425.CrossRef Yao, Y. C., Wen, J. H., & Weng, C. E. (2013). The performance evaluation of IEEE 802.11e for QoS support in wireless LANs. Wireless Personal Communications, 69(1), 413–425.CrossRef
36.
Zurück zum Zitat Yazid, M., Bouallouche-Medjkoune, L., Aïssani, D., Amrouche, N., & Bakli, K. (2014). Analytical analysis of applying packet fragmentation mechanism on both basic and RTS/CTS access methods of the IEEE 802.11b DCF network under imperfect channel and finite load conditions. Wireless Personal Communications, 77(1), 477–506.CrossRef Yazid, M., Bouallouche-Medjkoune, L., Aïssani, D., Amrouche, N., & Bakli, K. (2014). Analytical analysis of applying packet fragmentation mechanism on both basic and RTS/CTS access methods of the IEEE 802.11b DCF network under imperfect channel and finite load conditions. Wireless Personal Communications, 77(1), 477–506.CrossRef
37.
Zurück zum Zitat Yazid, M., Sahki, N., Bouallouche-Medjkoune, L., & Aïssani, D. (2015). Modeling and performance study of the packet fragmentation in an IEEE 802.11e-EDCA network over fading channel. Multimedia Tools and Applications, 74(21), 9507–9527.CrossRef Yazid, M., Sahki, N., Bouallouche-Medjkoune, L., & Aïssani, D. (2015). Modeling and performance study of the packet fragmentation in an IEEE 802.11e-EDCA network over fading channel. Multimedia Tools and Applications, 74(21), 9507–9527.CrossRef
38.
Zurück zum Zitat Patel, P., & Lobiyal, D. K. (2015). A simple but effective collision and error aware adaptive back-off mechanism to improve the performance of IEEE 802.11 DCF in error-prone environment. Wireless Personal Communications, 83(2), 14771518.CrossRef Patel, P., & Lobiyal, D. K. (2015). A simple but effective collision and error aware adaptive back-off mechanism to improve the performance of IEEE 802.11 DCF in error-prone environment. Wireless Personal Communications, 83(2), 14771518.CrossRef
39.
Zurück zum Zitat Puigjaner, R. (2003). Performance modelling of computer networks. In Proceedings of the 2003 IFIP/ACM Latin America conference on towards a Latin American agenda for network research (pp. 106–123). Puigjaner, R. (2003). Performance modelling of computer networks. In Proceedings of the 2003 IFIP/ACM Latin America conference on towards a Latin American agenda for network research (pp. 106–123).
40.
Zurück zum Zitat Moltchanov, D. (2010). Performance models for wireless channels. Computer Science Review, 4(3), 153–184.CrossRefMATH Moltchanov, D. (2010). Performance models for wireless channels. Computer Science Review, 4(3), 153–184.CrossRefMATH
41.
Zurück zum Zitat Casale, G., Gribaudo, M., & Serazzi, G. (2011). Tools for performance evaluation of computer systems: Historical evolution and perspectives. In Proceedings of performance evaluation of computer and communication systems (milestones and future challenges) (pp. 24–37). Springer, Berlin/Heidelberg. Casale, G., Gribaudo, M., & Serazzi, G. (2011). Tools for performance evaluation of computer systems: Historical evolution and perspectives. In Proceedings of performance evaluation of computer and communication systems (milestones and future challenges) (pp. 24–37). Springer, Berlin/Heidelberg.
42.
Zurück zum Zitat Narayan-Bhat, U. (2007). An introduction to queueing theory: Modeling and analysis in applications. New York: Springer.MATH Narayan-Bhat, U. (2007). An introduction to queueing theory: Modeling and analysis in applications. New York: Springer.MATH
43.
Zurück zum Zitat Lefebvre, M. (2007). Applied stochastic processes. New York: Springer.MATH Lefebvre, M. (2007). Applied stochastic processes. New York: Springer.MATH
44.
Zurück zum Zitat Bolch, G., Greiner, S., de-Meer, H., & Trivedi, K. S. (2006). Queueing networks and markov chains: Modeling and performance evaluation with computer science applications. Hoboken, NJ: Wiley.CrossRefMATH Bolch, G., Greiner, S., de-Meer, H., & Trivedi, K. S. (2006). Queueing networks and markov chains: Modeling and performance evaluation with computer science applications. Hoboken, NJ: Wiley.CrossRefMATH
45.
Zurück zum Zitat Bianchi, G. (2000). Performance analysis of the IEEE 802.11 districuted coordination function. IEEE Journal on Selected Areas in Communications, 18(3), 535–547.MathSciNetCrossRef Bianchi, G. (2000). Performance analysis of the IEEE 802.11 districuted coordination function. IEEE Journal on Selected Areas in Communications, 18(3), 535–547.MathSciNetCrossRef
46.
Zurück zum Zitat Giustiniano, D., Malone, D., Leith, D. J., & Papagiannaki, K. (2010). Measuring transmission opportunities in 802.11 links. IEEE/ACM Transactions on Networking, 18(5), 1516–1529.CrossRef Giustiniano, D., Malone, D., Leith, D. J., & Papagiannaki, K. (2010). Measuring transmission opportunities in 802.11 links. IEEE/ACM Transactions on Networking, 18(5), 1516–1529.CrossRef
47.
Zurück zum Zitat Lyakhov, A., & Vishnevsky, V. M. (2004). Packet fragmentation in Wi-Fi ad hoc networks with correlated channel failures. In Proceedings of IEEE international conference on mobile ad hoc and sensor systems (pp. 204–213). Lyakhov, A., & Vishnevsky, V. M. (2004). Packet fragmentation in Wi-Fi ad hoc networks with correlated channel failures. In Proceedings of IEEE international conference on mobile ad hoc and sensor systems (pp. 204–213).
48.
Zurück zum Zitat Sweedy, A. M., Semeia, A. I., Sayed, S. Y., & Konber, A. H. (2010). The effect of frame length, fragmentation and RTS/CTS mechanism on IEEE 802.11 MAC performance. In Proceedings of 10th international conference on intelligent systems design and applications (pp. 1338–1344). Sweedy, A. M., Semeia, A. I., Sayed, S. Y., & Konber, A. H. (2010). The effect of frame length, fragmentation and RTS/CTS mechanism on IEEE 802.11 MAC performance. In Proceedings of 10th international conference on intelligent systems design and applications (pp. 1338–1344).
49.
Zurück zum Zitat Pocta, P., Bilsak, M., & Rousekova, J. (2010). Impact of fragmentation threshold tuning on performance of voice service and background traffic in IEEE 802.11b WLANs. In Proceedings of 20th international conference on radioelektronika (pp. 1–4). Pocta, P., Bilsak, M., & Rousekova, J. (2010). Impact of fragmentation threshold tuning on performance of voice service and background traffic in IEEE 802.11b WLANs. In Proceedings of 20th international conference on radioelektronika (pp. 1–4).
50.
Zurück zum Zitat Park, S., Chang, Y., & Copeland, J. A. (2012). Throughput enhancement of MANETs: Packet fragmentation with hidden stations and BERs. In Proceedings of IEEE consumer communications and networking conference (pp. 188-193). Park, S., Chang, Y., & Copeland, J. A. (2012). Throughput enhancement of MANETs: Packet fragmentation with hidden stations and BERs. In Proceedings of IEEE consumer communications and networking conference (pp. 188-193).
51.
Zurück zum Zitat Gardiner, C. (2009). Stochastic methods. Berlin: Springer.MATH Gardiner, C. (2009). Stochastic methods. Berlin: Springer.MATH
Metadaten
Titel
Modeling and Analysis of the TXOPLimit Efficiency with the Packet Fragmentation in an IEEE 802.11e-EDCA Network Under Noise-Related Losses
verfasst von
Mohand Yazid
Djamil Aïssani
Louiza Bouallouche-Medjkoune
Publikationsdatum
02.11.2016
Verlag
Springer US
Erschienen in
Wireless Personal Communications / Ausgabe 2/2017
Print ISSN: 0929-6212
Elektronische ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-016-3863-y

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