Affiliation:
1. Tongji University
2. iSOFT Infrastructure Software Co., Ltd.
Abstract
<div class="section abstract"><div class="htmlview paragraph">The current automotive industry has a growing demand for real-time transmission to support reliable communication and for key technologies. The Time-Sensitive Networking (TSN) working group introduced standards for reliable communication in time-critical systems, including shaping mechanisms for bounded transmission latency. Among these shaping mechanisms, Cyclic Queuing and Forwarding (CQF) and frame preemption provide deterministic guarantees for frame transmission. However, despite some current studies on the performance analysis of CQF and frame preemption, they also need to consider the potential effects of their combined usage on frame transmission. Furthermore, there is a need for more research that addresses the impact of parameter configuration on frame transmission under different situations and shaping mechanisms, especially in the case of mechanism combination. Firstly, this paper comprehensively reviews the schedulability analysis of the combined usage of CQF and frame preemption based on Compositional Performance Analysis (CPA). This paper summarizes the Worst-Case Responses (WCRs) of streams of each class under CQF with preemption. Secondly, this paper analyses the WCR under CQF with preemption. This analysis identifies the factors that influence the transmission latency for streams of each class and proposes several guidelines in parameter configuration under this mechanism combination. Then, this paper develops a scheduler named CQFP scheduler, enabling the computation of the WCR for all streams under CQF with preemption in different network scenarios. Finally, the paper conducts simulations to obtain the WCR under various configurations, validating the guidelines and the results obtained from the CQFP scheduler. This evaluation provides insights into the performance of the combination of CQF and preemption. The results can provide the network designers detailed guidelines in traffic class assignment and parameter configuration under CQF with preemption.</div></div>
Reference18 articles.
1. Lo Bello , L. and Steiner , W. A Perspective on IEEE Time-Sensitive Networking for Industrial Communication and Automation Systems Proceedings of the IEEE 107 6 2019 1094 1120 10.1109/jproc.2019.2905334
2. Ashjaei , M. , Lo Bello , L. , Daneshtalab , M. , Patti , G. et al. Time-Sensitive Networking in Automotive Embedded Systems: State of the Art and Research Opportunities Journal of Systems Architecture 1172021 10.1016/j.sysarc.2021.102137
3. 2017
4. Leonardi , L. , Bello , L.L. , and Patti , G. Performance Assessment of the IEEE 802.1 Qch in an Automotive Scenario 2020 AEIT International Conference of Electrical and Electronic Technologies for Automotive (AEIT AUTOMOTIVE) 2020
5. Thiele , D. , Ernst , R. , and Diemer , J. Formal Worst-Case Timing Analysis of Ethernet TSN’s Time-Aware and Peristaltic Shapers 2015 IEEE Vehicular Networking Conference (VNC) 2015 10.1109/vnc.2015.7385584