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Large-scale group decision-making to facilitate inter-rater reliability of human-factors analysis for the railway system

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  • Zhou, Jian-Lan
  • Tu, Ren-Fang
  • Xiao, Hai

Abstract

The interdependency analysis of human factors usually needs to identify and label factors from accident/incident reports using a binary framework. The labeling procedure involves enormous knowledge and requires a large group of raters, but the raters’ opinions usually highly contradict each other. Thus, inter-rater reliability should be implemented to improve the labeling consistency. However, the inter-rater reliability coefficient is commonly computed on a category-by-category basis, which is inefficient especially when there are many raters. To overcome this deficiency, a feedback-autonomy-based consensus model is proposed to determine the inter-rater reliability of human-factors labeling results involving a large group of raters. The proposed model can manage various non-cooperative behaviors and provide feedback adjustment suggestions to raters for the labeling procedure. Notably, the autonomy mechanism allows raters to freely choose and adjust labels referring to the reference opinions without causing over-adjustment issue. The inter-rater reliability and the interdependency results are performed on 279 accident/incident reports. We apply a commercial tool to obtain the reference results, which are consistent with the unanimous group opinions. Besides, other comparative studies clarify the advantages of the proposed consensus model. The proposed model is convenient for reducing conflicts among raters that usually exist in human-factors analysis.

Suggested Citation

  • Zhou, Jian-Lan & Tu, Ren-Fang & Xiao, Hai, 2022. "Large-scale group decision-making to facilitate inter-rater reliability of human-factors analysis for the railway system," Reliability Engineering and System Safety, Elsevier, vol. 228(C).
  • Handle: RePEc:eee:reensy:v:228:y:2022:i:c:s0951832022004252
    DOI: 10.1016/j.ress.2022.108806
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    References listed on IDEAS

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    1. Lo, Huai-Wei & Liou, James J.H. & Huang, Chun-Nen & Chuang, Yen-Ching, 2019. "A novel failure mode and effect analysis model for machine tool risk analysis," Reliability Engineering and System Safety, Elsevier, vol. 183(C), pages 173-183.
    2. Zhou, Jian-Lan & Lei, Yi, 2020. "A slim integrated with empirical study and network analysis for human error assessment in the railway driving process," Reliability Engineering and System Safety, Elsevier, vol. 204(C).
    3. Laumann, Karin & Rasmussen, Martin, 2016. "Suggested improvements to the definitions of Standardized Plant Analysis of Risk-Human Reliability Analysis (SPAR-H) performance shaping factors, their levels and multipliers and the nominal tasks," Reliability Engineering and System Safety, Elsevier, vol. 145(C), pages 287-300.
    4. Yoon, Young Sik & Ham, Dong-Han & Yoon, Wan Chul, 2016. "Application of activity theory to analysis of human-related accidents: Method and case studies," Reliability Engineering and System Safety, Elsevier, vol. 150(C), pages 22-34.
    5. Cai, Wei & Zhao, Jingyi & Zhu, Ming, 2020. "A real time methodology of cluster-system theory-based reliability estimation using k-means clustering," Reliability Engineering and System Safety, Elsevier, vol. 202(C).
    6. Xia-Zhong Zheng & Fei Wang & Jian-Lan Zhou, 2017. "A Hybrid Approach for Evaluating Faulty Behavior Risk of High-Risk Operations Using ANP and Evidence Theory," Mathematical Problems in Engineering, Hindawi, vol. 2017, pages 1-16, August.
    7. Kim, Dong San & Baek, Dong Hyun & Yoon, Wan Chul, 2010. "Development and evaluation of a computer-aided system for analyzing human error in railway operations," Reliability Engineering and System Safety, Elsevier, vol. 95(2), pages 87-98.
    8. Xiaohong Chen & Weiwei Zhang & Xuanhua Xu & Wenzhi Cao, 2022. "Managing Group Confidence and Consensus in Intuitionistic Fuzzy Large Group Decision-Making Based on Social Media Data Mining," Group Decision and Negotiation, Springer, vol. 31(5), pages 995-1023, October.
    9. Abrishami, Shokoufeh & Khakzad, Nima & Hosseini, Seyed Mahmoud & van Gelder, Pieter, 2020. "BN-SLIM: A Bayesian Network methodology for human reliability assessment based on Success Likelihood Index Method (SLIM)," Reliability Engineering and System Safety, Elsevier, vol. 193(C).
    10. Liu, Peng & Qiu, Yongping & Hu, Juntao & Tong, Jiejuan & Zhao, Jun & Li, Zhizhong, 2020. "Expert judgments for performance shaping Factors’ multiplier design in human reliability analysis," Reliability Engineering and System Safety, Elsevier, vol. 194(C).
    11. Liu, Hu-Chen & Li, Zhaojun & Zhang, Jian-Qing & You, Xiao-Yue, 2018. "A large group decision making approach for dependence assessment in human reliability analysis," Reliability Engineering and System Safety, Elsevier, vol. 176(C), pages 135-144.
    12. Bevilacqua, Maurizio & Ciarapica, Filippo Emanuele, 2018. "Human factor risk management in the process industry: A case study," Reliability Engineering and System Safety, Elsevier, vol. 169(C), pages 149-159.
    13. Evans, Andrew W., 2013. "The economics of railway safety," Research in Transportation Economics, Elsevier, vol. 43(1), pages 137-147.
    14. Kaptan, Mehmet & Uğurlu, Özkan & Wang, Jin, 2021. "The effect of nonconformities encountered in the use of technology on the occurrence of collision, contact and grounding accidents," Reliability Engineering and System Safety, Elsevier, vol. 215(C).
    15. Dindar, Serdar & Kaewunruen, Sakdirat & An, Min, 2020. "Bayesian network-based human error reliability assessment of derailments," Reliability Engineering and System Safety, Elsevier, vol. 197(C).
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