Adaptive channel reservation multiple access protocol based on differentiated traffic guarantee

被引:0
|
作者
Liu Z. [1 ]
Li B. [1 ]
Yang M. [1 ]
Yan Z. [1 ]
机构
[1] School of Electronics and Information, Northwestern Polytechnical University, Xi′an
关键词
Ad Hoc networks; channel reservation mechanism; traffic differentiation;
D O I
10.1051/jnwpu/20244210084
中图分类号
学科分类号
摘要
Ad Hoc network is widely used because of its distributed flexibility, in which nodes may generate different types of traffic, and some high-priority traffic requires lower delay and other Quality of service (QoS) requirements. However, as the load of traffic increases, the probability of conflict increases significantly, which makes it difficult to guarantee the requirement of these traffic. It is significant to design the efficient multiple access protocol to ensure the quality of different kinds of traffic. Channel reservation mechanism is an important method to ensure QoS. However, the existing channel reservation mechanism does not fine-adjust reservation parameters according to the QoS when dealing with various traffic differently, and the differentiation mechanism is rough. In addition, it is difficult to ensure the performance of common services when low-latency services are met. Therefore, a differentiated service guarantee adaptive reservation mechanism (DSGARM) to solve the above problems is proposed. The core idea of the protocol is to provide differentiated services in detail according to the delay tolerance requirements of each business. Absolute reservation mechanism is used to guarantee delay-sensitive services, and relative reservation mechanism is used to service relatively delay-insensitive services. In the protocol, a model is established to design an adaptive algorithm to quantitatively calculate reservation parameters that meet the delay requirements. On the premise of prioritized reservation for various services, appropriate reservation parameters can be adjusted according to network conditions to ensure the delay tolerance requirements of each type of service. The present work can be widely applied to scenarios with differentiated business requirements. The simulation results show the advantages of the present protocol and have great practical significance. ©2024 Journal of Northwestern Polytechnical University.
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页码:84 / 91
页数:7
相关论文
共 11 条
  • [1] ABU-KHADRAH A I, ZAKARIA Z, OTHMAN M, Et al., Enhance the performance of EDCA protocol by adapting contention window, Wireless Personal Communications, 96, 2, pp. 1945-1971, (2017)
  • [2] LI B, LI W, VALOIS F, Et al., Performance analysis of an efficient MAC protocol with multiple-step distributed in-band channel reservation, IEEE Trans on Vehicular Technology, 59, 1, pp. 368-382, (2009)
  • [3] LIU Z, LI B, YANG M, Et al., An adaptive channel reservation mac protocol based on forwarding traffic of key nodes
  • [4] CHENG J, LI B, YANG M, Et al., Soft channel reservation towards latency guarantee for the next generation WLAN: IEEE 802. 11 be, International Conference on Internet of Things as a Service, pp. 450-461, (2021)
  • [5] LEE J., An efficient reservation-based MAC protocol for multi-priority traffic in slotted multi-channel distributed cognitive radio networks, IEEE Access, 8, pp. 185830-185841, (2020)
  • [6] LEI J, TAO J, HUANG J, Et al., A differentiated reservation MAC protocol for achieving fairness and efficiency in multi-rate IEEE 802.11 WLANs, IEEE Access, 7, pp. 12133-12145, (2019)
  • [7] KUMAR A, ABDELHADI A, CLANCY C., A delay-optimal packet scheduler for M2M uplink, 2016 IEEE Military Communications Conference, pp. 295-300, (2016)
  • [8] QU Q, LI B, YANG M, Et al., Survey and performance evaluation of the upcoming next generation WLANs standard-IEEE 802. 11 ax, Mobile Networks and Applications, 24, 5, pp. 1461-1474, (2019)
  • [9] IEEE standard for information technology-telecommunications and information exchange between systems local and metropolitan area networks-specific requirements part 11: wireless lan medium access control(MAC) and physical layer(PHY) specifications amendment 1: enhancements for high efficiency WLAN [S], (2021)
  • [10] LI B, SUN K, YAN Z, Et al., Idea and theory of particle access