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Development of a time-variant causal model of human error in construction with dynamic Bayesian network

Zhangming Ma (Tsinghua University, Beijing, China)
Heap-Yih Chong (Department of Construction Management, Curtin University, Bentley, Australia)
Pin-Chao Liao (Department of Construction Management, Tsinghua University, Beijing, China)

Engineering, Construction and Architectural Management

ISSN: 0969-9988

Article publication date: 17 December 2019

Issue publication date: 3 February 2021

419

Abstract

Purpose

Human error is among the leading causes of construction-based accidents. Previous studies on the factors affecting human error are rather vague from the perspective of complex and changeable working environments. The purpose of this paper is to develop a dynamic causal model of human errors to improve safety management in the construction industry. A theoretical model is developed and tested through a case study.

Design/methodology/approach

First, the authors defined the causal relationship between construction and human errors based on the cognitive reliability and error analysis method (CREAM). A dynamic Bayesian network (DBN) was then developed by connecting time-variant causal relationships of human errors. Next, prediction, sensitivity analysis and diagnostic analysis of DBN were applied to demonstrate the function of this model. Finally, a case study of elevator installation was presented to verify the feasibility and applicability of the proposed approach in a construction work environment.

Findings

The results of the proposed model were closer to those of practice than previous static models, and the features of the systematization and dynamics are more efficient in adapting toward increasingly complex and changeable environments.

Originality/value

This research integrated CREAM as the theoretical foundation for a novel time-variant causal model of human errors in construction. Practically, this model highlights the hazards that potentially trigger human error occurrences, facilitating the implementation of proactive safety strategy and safety measures in advance.

Keywords

Acknowledgements

The authors would like to thank the National Natural Science Foundation of China (Nos 51878382 and 51578317) and the United Technologies Corporation (No. 20153000259) for their support. The authors are grateful for input from the industry professionals who participated in this research.

Citation

Ma, Z., Chong, H.-Y. and Liao, P.-C. (2021), "Development of a time-variant causal model of human error in construction with dynamic Bayesian network", Engineering, Construction and Architectural Management, Vol. 28 No. 1, pp. 291-307. https://doi.org/10.1108/ECAM-03-2019-0130

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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