Performance Evaluation on Packet Transmission for AFDX Networks Using Optimized Forward End-to-End Delay Analysis

被引:0
作者
Qingfei Xu
Xinyu Yang
机构
[1] Xi’an Jiaotong University,School of Electronic and Information Engineering
[2] Shanghai Aviation Electric Co. LTD,Civil Aviation Division
来源
International Journal of Aeronautical and Space Sciences | 2020年 / 21卷
关键词
Performance evaluation; Worst-case delay; Backlog; Real-time transmission; AFDX; Serialization;
D O I
暂无
中图分类号
学科分类号
摘要
AFDX (Avionics Full Duplex switched Ethernet) standardized as ARINC 664 is chosen as the backbone network for distributed real-time avionics systems as it offers high throughput and does not require global clock synchronization. A deterministic upper bound of the end-to-end transmission delays for packets of each flow should be guaranteed to ensure the network performance. In this paper, we focus on the forward end-to-end delay analysis (FA). This approach iteratively estimates the maximum backlog (amount of the pending packets) in the switch output port along the transmission path so that the worst-case end-to-end transmission delay can be computed and the network performance can be evaluated. Recent research demonstrates this approach is pessimistic (overestimated). This paper presents an optimization which considers the serialization effect of packets transmitted through the same physical link. We provide a comparative analysis on both sample network configurations and real industrial systems. The experiments show that by considering the serialization effect the forward end-to-end delay analysis can remove the pessimism in the analysis of end-to-end transmission delay. The evaluation of network performance can be improved. Then a discussion on the potential optimism (underestimation) is presented.
引用
收藏
页码:1114 / 1128
页数:14
相关论文
共 30 条
[1]  
Zhang F(2009)Research on architecture of integrated modular avionics Acta Opt Sin 16 47-51
[2]  
Chu W(2017)Forward end-to-end delay analysis for AFDX networks IEEE Trans Ind Inform 14 858-865
[3]  
Fan X(2012)Design and implementation of AFDX end system software Electron Opt Control 19 71-76
[4]  
Benammar N(2017)Upper bound computation for buffer backlog on AFDX networks with multiple priority virtual links Sympos Appl Comput 65 1-14
[5]  
Ridouard F(2016)SEtSim: a modular simulation tool for switched Ethernet networks J Syst Archit 37 114-131
[6]  
Bauer H(1991)A calculus for network delay. I. Network elements in isolation IEEE Trans Inf Theory 37 132-141
[7]  
Liu Y(1991)A calculus for network delay, Part II: network analysis IEEE Trans Inf Theory 20 506-517
[8]  
Wang H(2019)Performance analysis on transmission estimation for avionics real-time system using optimized network calculus Int J Aeronaut Space Sci 6 521-533
[9]  
Wang B(2017)Deterministic bound for avionics switched networks according to networking features using network calculus Chin J Aeronaut 5 38-49
[10]  
Coelho R(2010)Improving the worst-case delay analysis of an AFDX network using an optimized trajectory approach IEEE Trans Ind Inform undefined undefined-undefined