Comparison of real-time anti-jamming transmission for avionics AFDX and AVB

被引:0
作者
Zhao L. [1 ]
He F. [1 ]
Xiong H. [1 ]
机构
[1] School of Electronic and Information Engineering, Beijing University of Aeronautics and Astronautics, Beijing
来源
Beijing Hangkong Hangtian Daxue Xuebao/Journal of Beijing University of Aeronautics and Astronautics | 2017年 / 43卷 / 12期
基金
中国国家自然科学基金;
关键词
Anti-jamming; Audio/video bridging (AVB) network; Avionics full-duplex switched Ethernet (AFDX); Avionics network; Real-time;
D O I
10.13700/j.bh.1001-5965.2016.0908
中图分类号
学科分类号
摘要
AVB is considered to meet the demands of audio video transmission in future avionics system, which is a real-time multimedia network and has become a candidate for in-vehicle embedded systems. Comparative study on AFDX and AVB is implemented. First, standards of AVB and AFDX are compared. Second, the method for end-to-end delay in AVB and AFDX is discussed by network calculus. Then the elements interfering real-time transmission are analyzed depending on different transmission scenarios. Conclusions are verified by simulation. In typical networking with 1 000 virtual links, the results show that the end-to-end delay of high priority traffic in AFDX is smaller than that in AVB; the advantage and disadvantage of end-to-end delay for low priority traffic exist in both AVB and AFDX. But influenced by the burst 50 low priority streams (each with 0.22 Mbit/s bandwidth), the variation rate of average end-to-end delay for high priority traffic is 0.25% in AVB and 0.38% in AFDX; influenced by the burst 50 high priority streams (each with 0.22 Mbit/s bandwidth), the variation rate of low priority traffic is 5.17% in AVB and 10.25% in AFDX. Real-time anti-jamming transmission of time-sensitive information in AVB is superior to AFDX. © 2017, Editorial Board of JBUAA. All right reserved.
引用
收藏
页码:2359 / 2369
页数:10
相关论文
共 24 条
  • [1] Aircraft data network, Part 7:Avionics full duplex switched Ethernet(AFDX)network, pp. 9-18, (2005)
  • [2] Pu X.B., Modern Avionics System and Integration, pp. 55-89, (2013)
  • [3] IEEE 802.1 audio/video bridging (AVB)
  • [4] Steinbach T., Lim H.T., Korf F., Et al., Tomorrow's in-car interconnect? A competitive evaluation of IEEE 802.1 AVB and time-triggered ethernet(AS6802), 2012 IEEE Vehicular Technology Conference, pp. 1-5, (2012)
  • [5] Alderisi G., Iannizzotto G., Bello L.L., Towards 802.1 Ethernet AVB for advanced driver assistance systems:A preliminary assessment, 2012 IEEE 17th International Conference on Emerging Technologies and Factory Automation, pp. 1-4, (2012)
  • [6] Zinner H., Noebauer J., Seitz J., Et al., A comparison of time synchronization in AVB and FlexRay in-vehicle networks, 2011 Proceedings of the 9th Workshop on Intelligent Solutions in Embedded Systems, pp. 67-72, (2011)
  • [7] Xiong H.G., Wang Z.H., Advanced Avionics Integration Techniques, pp. 85-90, (2009)
  • [8] Geyer F., Heidinger E., Schneele S., Et al., Evaluation of audio/video bridging forwarding method in avionics switched Ethernet context, 2013 IEEE Symposium on Computers and Communications, pp. 000711-000716, (2013)
  • [9] Heidinger E., Geyer F., Schneele S., Et al., A performance study of audio video bridging in aeronautic Ethernet networks, 7th IEEE International Symposium on Industrial Embedded Systems, pp. 67-75, (2012)
  • [10] Jeon S., Lee J., Park S., Dual-path method for enhancing the performance of IEEE 802.1 AVB with time-triggered scheme, 2015 21st Asia-Pacific Conference on Communications, pp. 519-523, (2015)