To improve the efficiency and accuracy of rare-event reliability analysis of complex structures, an advanced adaptive kriging-based candidate sample reduction (AK-CSR) method is proposed by integrating the CSR strategy and the advanced AK method. Through the improved first-order reliability method and the updated kriging model (KM), the accurate most probable failure point can be obtained with KM updating. By domain constraint and distance constraint functions, the CSR strategy can ceaselessly find desired samples to update the KM. The proposed method was verified using three numerical examples and two engineering examples. The results demonstrated that the AK-CSR method can be used to perform rare-event reliability analysis of complex structures and improve computational efficiency while maintaining good accuracy. Moreover, this study offers a useful insight into reliability-based design optimisation of complex structures and enriches the field of structural reliability theory.
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1 October 2025
Research Article|
January 03 2025
Adaptive surrogate-assisted sampling pool reduction strategy for low failure probability estimation
Hong Zhang;
Hong Zhang
Lecturer,
Tianmushan Laboratory
, Hangzhou, China
; School of Mechanical and Electrical Engineering, Suqian University, Jiangsu, China
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Lukai Song;
Assistant Professor,
Tianmushan Laboratory
, Hangzhou, China
; Digital twin International Research Center, International Institute for Interdisciplinary and Frontiers, Beihang University, Beijing, China; Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hong Kong, ChinaCorresponding author Lukai Song (songlukai29@163.com)
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Xueqin Li;
Xueqin Li
Department of Civil Engineering,
City University of Hong Kong
, Hong Kong, China
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Yatsze Choy;
Yatsze Choy
Associate Professor, Department of Mechanical Engineering,
The Hong Kong Polytechnic University
, Hong Kong, China
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Hongxin Liu;
Hongxin Liu
Professor, School of Mechanical and Electrical Engineering,
Suqian University
, Jiangsu, China
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Fei Tao
Fei Tao
Professor,
Tianmushan Laboratory
, Hangzhou, China
; Digital Twin International Research Center, Dean of International Institute for Interdisciplinary and Frontiers, Beihang University, Beijing, China; School of Automation Science and Electrical Engineering, Beihang University, Beijing, China
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Corresponding author Lukai Song (songlukai29@163.com)
Conflicts of interest The authors declare that they have no conflicts of interest.
Publisher: Emerald Publishing
Received:
October 12 2024
Accepted:
December 04 2024
Online ISSN: 1751-7710
Print ISSN: 0965-092X
Funding
Funding Group:
- Award Group:
- Funder(s): National Natural Science Foundation of China
- Award Id(s): 52275471,52105136
- Funder(s):
- Award Group:
- Funder(s): Hong Kong Scholar Programme
- Award Id(s): XJ2022013
- Funder(s):
- Funding Statement(s): This work was supported by the National Natural Science Foundation of China (grant nos 52275471 and 52105136) and the Hong Kong Scholar Programme (grant no. XJ2022013). The authors would like to thank these organisations.
© 2025 Emerald Publishing Limited
2025
Emerald Publishing Limited
Licensed re-use rights only
Proceedings of the Institution of Civil Engineers - Transport (2025) 178 (7): 443–458.
Article history
Received:
October 12 2024
Accepted:
December 04 2024
Citation
Zhang H, Song L, Li X, Choy Y, Liu H, Tao F (2025), "Adaptive surrogate-assisted sampling pool reduction strategy for low failure probability estimation". Proceedings of the Institution of Civil Engineers - Transport, Vol. 178 No. 7 pp. 443–458, doi: https://doi.org/10.1680/jtran.24.00124
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