通过贝叶斯信念网络模拟英国境内搜索和救援行动的可靠性

A. Russell, J. Quigley, R. Meer
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引用次数: 2

摘要

本文使用贝叶斯信念网络(BBN)方法来评估英国海岸警卫队(海上救援)协调中心内搜救(SAR)行动的可靠性。这是早期工作的延伸,早期工作调查了政府决定关闭一些协调中心的理由。先前的研究使用二手数据来源,并采用二元逻辑回归方法来支持分析。本研究的重点是通过结构化的启发过程收集原始数据,从而构建BBN。该研究的主要发现是,逻辑回归等方法是BBN的补充。前者对变量之间的关联提供了更客观的评估,但由于缺乏可用数据,可以在模型内明确表达的详细程度受到限制。后一种方法提供了一个更详细的模型,但数值评估的有效性更值得怀疑。每一种方法都可以用来为另一种方法的发展提供信息和保护。本文详细描述了用于构建BBN的激发过程,并反映了潜在的偏差。
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Modeling the reliability of search and rescue operations within the UK through Bayesian belief networks
This paper uses a Bayesian belief networks (BBN) methodology to assess the reliability of search and rescue (SAR) operations within the UK coastguard (maritime rescue) coordination centers. This is an extension of earlier work, which investigated the rationale of the government's decision to close a number of coordination centers. The previous study made use of secondary data sources and employed a binary logistic regression methodology to support the analysis. This study focused on the collection of primary data through a structured elicitation process, which resulted in the construction of a BBN. The main findings of the study are that approaches such as logistic regression are complementary to BBN's. The former provided a more objective assessment of associations between variables but was restricted in the level of detail that could be explicitly expressed within the model due to lack of available data. The latter method provided a much more detailed model but the validity of the numeric assessments was more questionable. Each method can be used to inform and defend the development of the other. The paper describes in detail the elicitation process employed to construct the BBN and reflects on the potential for bias.
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