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[2025-2028] : [SG21] : [Q10/21]

[Declared patent(s)]  - [Associated work]

Work item: F.CAV-MEMSF
Subject/title: Metrics and evaluation methods for the robustness of multi-sensor fusion-based perception in connected and automated vehicles
Status: Under study 
Approval process: AAP
Type of work item: Recommendation
Version: New
Equivalent number: -
Timing: 2027-01 (Medium priority)
Liaison: ISO/TC 22/SC 31
Supporting members: Ministry of Industry and Information Technology (MIIT); Chongqing Changan Automobile Co., Ltd.; China Information and Communication Technology Group Co., Ltd. (CICT)
Summary: Multi-sensor fusion perception is vital for connected and automated vehicles to handle complex environments using data from sensors like cameras, LiDAR, and V2X communication. However, challenges such as extreme weather, sensor failures, and communication issues can reduce perception accuracy and stability. This recommendation addresses these challenges by defining robustness evaluation methods for MSF modules, focusing on tasks like collaborative localization, object detection, and lane detection. It also specifies evaluation metrics, including accuracy, precision, and IoU, to enhance system reliability and ensure CAV safety in dynamic driving scenarios.
Comment: -
Reference(s):
  Historic references:
Contact(s):
Jiayi FANG, Editor
Yuming GE, Editor
Zheng GONG, Editor
Jinling HU, Editor
Feng LI, Editor
Guo PU, Editor
Xiangyun REN, Editor
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First registration in the WP: 2025-02-27 22:04:24
Last update: 2025-02-28 10:22:39