TY - JOUR
T1 - Analysis of Network Latency in Automotive Central Electronic and Electrical Architecture Based on XGSPON
AU - Li, Hui
AU - Zheng, Wenxiang
AU - Guo, Desui
AU - Dou, Jiachen
AU - Cao, Wanke
N1 - Publisher Copyright:
© 2026, Editorial Department of Automotive Technology. All rights reserved.
PY - 2026
Y1 - 2026
N2 - In response to the bandwidth bottleneck and delay-sensitive challenges posed by high-data-volume transmission in intelligent vehicles, an Electrical/Electronic (E/E) architecture based on 10 Gbit/s Symmetric Passive Optical Network (XGSPON) technology is designed according to the vehicular environment. First, the overall E/E architecture is designed and described. On this basis, a composite network loop delay analysis method is proposed, which enables in-depth analysis of the end-to-end delay characteristics of the network architecture through detailed network topology diagrams and mathematical equations for upper-bound delay. Finally, a performance comparison is conducted between the proposed architecture and traditional Ethernet architectures using simulation software. The results demonstrate that the XGSPON-based architecture outperforms traditional Ethernet architectures in terms of end-to-end delay, effectively supporting the requirements for high-data-volume and low-latency transmission.
AB - In response to the bandwidth bottleneck and delay-sensitive challenges posed by high-data-volume transmission in intelligent vehicles, an Electrical/Electronic (E/E) architecture based on 10 Gbit/s Symmetric Passive Optical Network (XGSPON) technology is designed according to the vehicular environment. First, the overall E/E architecture is designed and described. On this basis, a composite network loop delay analysis method is proposed, which enables in-depth analysis of the end-to-end delay characteristics of the network architecture through detailed network topology diagrams and mathematical equations for upper-bound delay. Finally, a performance comparison is conducted between the proposed architecture and traditional Ethernet architectures using simulation software. The results demonstrate that the XGSPON-based architecture outperforms traditional Ethernet architectures in terms of end-to-end delay, effectively supporting the requirements for high-data-volume and low-latency transmission.
KW - 10 Gbit/s Symmetric Passive Optical Network (XGSPON)
KW - Automotive network
KW - Electrical architecture
KW - End-to-end latency
KW - Intelligent vehicles
UR - https://www.scopus.com/pages/publications/105045305379
U2 - 10.19620/j.cnki.1000-3703.20240953
DO - 10.19620/j.cnki.1000-3703.20240953
M3 - Article
AN - SCOPUS:105045305379
SN - 1000-3703
VL - 2026
SP - 19
EP - 26
JO - Automobile Technology
JF - Automobile Technology
IS - 1
ER -