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首页> 外文期刊>Reliability Engineering & System Safety >Capturing cognitive causal paths in human reliability analysis with Bayesian network models
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Capturing cognitive causal paths in human reliability analysis with Bayesian network models

机译:用贝叶斯网络模型捕获人类可靠性分析中的认知因果路径

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摘要

In the last decade, Bayesian networks (BNs) have been identified as a powerful tool for human reliability analysis (HRA), with multiple advantages over traditional HRA methods. In this paper we illustrate how BNs can be used to include additional, qualitative causal paths to provide traceability. The proposed framework provides the foundation to resolve several needs frequently expressed by the HRA community. First, the developed extended BN structure reflects the causal paths found in cognitive psychology literature, thereby addressing the need for causal traceability and strong scientific basis in HRA. Secondly, the use of node reduction algorithms allows the BN to be condensed to a level of detail at which quantification is as straightforward as the techniques used in existing HRA. We illustrate the framework by developing a BN version of the critical data misperceived crew failure mode in the IDHEAS HRA method, which is currently under development at the US NRG [45]. We illustrate how the model could be quantified with a combination of expert-probabilities and information from operator performance databases such as SACADA. This paper lays the foundations necessary to expand the cognitive and quantitative foundations of HRA.
机译:在过去的十年中,贝叶斯网络(BNs)被认为是用于人类可靠性分析(HRA)的强大工具,与传统的HRA方法相比具有多种优势。在本文中,我们说明了如何使用BN来包括其他定性因果路径以提供可追溯性。拟议的框架为解决HRA社区经常表达的若干需求提供了基础。首先,发达的扩展BN结构反映了认知心理学文献中发现的因果路径,从而满足了因果关系可追溯性和HRA强大的科学基础的需求。其次,节点减少算法的使用允许将BN压缩到一个细节级别,在该级别上量化与现有HRA中使用的技术一样简单。我们通过在IDHEAS HRA方法中开发关键数据被误解的机组故障模式的BN版本来说明该框架,目前该模型正在美国NRG进行开发[45]。我们说明了如何结合专家概率和来自运营商绩效数据库(例如SACADA)的信息对模型进行量化。本文奠定了扩展HRA认知和定量基础的必要基础。

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