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首页> 外文期刊>European Journal of Operational Research >Estimation of the workload boundary in socio-technical infrastructure management systems: The case of Belgian railroads
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Estimation of the workload boundary in socio-technical infrastructure management systems: The case of Belgian railroads

机译:社会技术基础设施管理系统中工作量边界的估算:比利时铁路的情况

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Infrastructure systems are large-scale complex sodo-technical systems that rely on humans for their safety critical decision-making activities. In the case of railroad networks, hierarchical organizations denoted as traffic control centers (TCCs) operate 24/7 in order to maintain successful network operations. Interacting social and technical factors influence TCC operational environments and thus the overall performance of the railroad system. This research presents a novel data envelopment analysis (DEA) application along with its implementation and validation by investigating the workload boundary of human performance through a case study built for the Belgian railway (INFRABEL) TCCs. We pursue two research foci. The first is to identify organizational, socio-economic, and technical factors that describe the performance environments in which TCC personnel operate. We use these factors to determine relatively homogeneous performance environments using multivariate statistical methods. The second focus is to design and implement on-site a socio-technical performance measurement framework, based on a new and unique dataset at the workstation level that is capable of considering sodo-technical heterogeneity. Our approach consists of three steps. First, we apply a two-stage clustering approach to generate statistically relatively homogeneous groups. Second, we calculate meta - and in-cluster efficiency scores. Finally, we assess the validity of our results with INFRABEL. Results reveal three insights: (i) efficiency improvement strategies require further investigation based on temporal trends; (ii) disregarding performance environment heterogeneity leads to over estimation in target setting; and (iii) socio-technical system design could be informed by applying DEA, provided that, domain specific expertise is used in the model formulation. (C) 2019 Elsevier B.V. All rights reserved.
机译:基础设施系统是依靠人类对自身安全的关键决策活动的大型复杂SODO技术系统。在铁路网络的情况下,分级组织表示为交通控制中心(部队派遣国)为了保持成功的网络运营全天候运行。相互作用的社会和技术因素影响TCC的操作环境,因此铁路系统的整体性能。该研究提出了与它的实施和验证,通过比利时铁路(INFRABEL)部队派遣国建立了一个案例研究调查人的行为的工作量边界沿着新的数据包络分析(DEA)的应用程序。我们追求两个研究焦点。首先是确定描述在TCC人员操作的高性能环境组织,社会经济和技术因素。我们用这些因素来确定使用多元统计方法相对单一的高性能环境。第二个重点是设计和现场实施社会技术性能测试框架的基础上,在工作站级别,能够考虑SODO技术异质性的新的和独特的数据集。我们的方法包括三个步骤。首先,我们采用两阶段聚类方法来生成统计相对均匀的群体。其次,我们计算荟萃 - 在集群得分效率。最后,我们评估我们与INFRABEL结果的有效性。结果表明三个观点:(一)提高效率战略需要基于时间的趋势进一步调查; (ⅱ)不考虑性能环境异质性导致在目标设定在估计;和(iii)社会技术系统设计可以通过施加DEA被告知,其前提是,域特定专长在模型制剂中使用。 (c)2019 Elsevier B.v.保留所有权利。

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