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构建用于改善工作场所员工安全行为的贝叶斯网络模型。

Constructing a Bayesian network model for improving safety behavior of employees at workplaces.

作者信息

Mohammadfam Iraj, Ghasemi Fakhradin, Kalatpour Omid, Moghimbeigi Abbas

机构信息

Center of Excellence for Occupational Health, Research Center for Health Science, School of Public Health, Hamadan University of Medical Sciences, Hamadan, Iran.

Center of Excellence for Occupational Health, Research Center for Health Science, School of Public Health, Hamadan University of Medical Sciences, Hamadan, Iran.

出版信息

Appl Ergon. 2017 Jan;58:35-47. doi: 10.1016/j.apergo.2016.05.006. Epub 2016 May 31.

Abstract

INTRODUCTION

Unsafe behavior increases the risk of accident at workplaces and needs to be managed properly. The aim of the present study was to provide a model for managing and improving safety behavior of employees using the Bayesian networks approach.

METHODS

The study was conducted in several power plant construction projects in Iran. The data were collected using a questionnaire composed of nine factors, including management commitment, supporting environment, safety management system, employees' participation, safety knowledge, safety attitude, motivation, resource allocation, and work pressure. In order for measuring the score of each factor assigned by a responder, a measurement model was constructed for each of them. The Bayesian network was constructed using experts' opinions and Dempster-Shafer theory. Using belief updating, the best intervention strategies for improving safety behavior also were selected.

RESULTS

The result of the present study demonstrated that the majority of employees do not tend to consider safety rules, regulation, procedures and norms in their behavior at the workplace. Safety attitude, safety knowledge, and supporting environment were the best predictor of safety behavior. Moreover, it was determined that instantaneous improvement of supporting environment and employee participation is the best strategy to reach a high proportion of safety behavior at the workplace.

CONCLUSION

The lack of a comprehensive model that can be used for explaining safety behavior was one of the most problematic issues of the study. Furthermore, it can be concluded that belief updating is a unique feature of Bayesian networks that is very useful in comparing various intervention strategies and selecting the best one form them.

摘要

引言

不安全行为会增加工作场所发生事故的风险,需要进行妥善管理。本研究的目的是提供一个使用贝叶斯网络方法来管理和改善员工安全行为的模型。

方法

该研究在伊朗的几个发电厂建设项目中进行。数据通过一份由九个因素组成的问卷收集,这些因素包括管理承诺、支持性环境、安全管理体系、员工参与、安全知识、安全态度、动机、资源分配和工作压力。为了衡量回答者对每个因素给出的分数,为每个因素构建了一个测量模型。贝叶斯网络是利用专家意见和登普斯特 - 谢弗理论构建的。通过信念更新,还选择了改善安全行为的最佳干预策略。

结果

本研究结果表明,大多数员工在工作场所的行为中往往不考虑安全规则、规定、程序和规范。安全态度、安全知识和支持性环境是安全行为的最佳预测指标。此外,确定了即时改善支持性环境和员工参与是在工作场所实现高比例安全行为的最佳策略。

结论

缺乏一个可用于解释安全行为的综合模型是该研究最成问题的问题之一。此外,可以得出结论,信念更新是贝叶斯网络的一个独特特征,在比较各种干预策略并从中选择最佳策略方面非常有用。

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