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A Bayesian Network Approach for Assessing the General Resilience of Road Transportation Systems: A Systems Perspective

机译:系统评估的贝叶斯网络方法评估道路运输系统的总体弹性

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We proposed a Bayesian network model (BNM) based on function-oriented resilience framework and ontological interdependence among 10 system qualities to probabilistically assess the general resilience of the road transportation system in Beijing from 1997 to 2016. We tested the model with multi-source data collected from various sectors. The system qualities were examined by analysis of sensitivity and influence. The result shows that the general resilience of Beijing's road system exhibits a "V" shape in its trend, with the probability of being generally resilient between 50% and 70%, and at its minimum in 2006. There was a steep increase in such a probability since 2006. In addition, the general resilience of Beijing's road transportation system is most affected by its capabilities: (1) to rebuild its performance; (2) to be robust; (3) to adapt; (4) to change; and (5) to quickly repair damaged parts. The proposed BNM is a promising tool for multi-dimensional and systematic analysis, instead of finding a one-size-fits-all quantification criterion for the resilience.
机译:我们基于功能导向的弹性框架和10种系统质量之间的本体相互依赖性,提出了贝叶斯网络模型(BNM),以概率评估北京道路运输系统的一般弹性(从1997年到2016年)。我们使用多源数据对模型进行了测试从各个部门收集。通过分析敏感性和影响力来检查系统质量。结果表明,北京道路系统的总体弹性呈“ V”形,其总体弹性在50%至70%之间的可能性最小,并在2006年达到最低。此外,北京道路运输系统的总体复原力受其能力的影响最大:(1)重建其绩效; (2)要健壮; (3)适应; (4)改变; (5)迅速修复损坏的零件。提出的BNM是进行多维和系统分析的有前途的工具,而不是为复原力找到一种千篇一律的量化标准。

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