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Tunnel collapse risk assessment based on multistate fuzzy Bayesian networks

机译:基于多状态模糊贝叶斯网络的隧道塌方风险评估

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摘要

Excessive structural deformation or collapse can lead to heavy casualties and substantial property loss. This paper presents a novel integrated risk assessment method based on multistate fuzzy Bayesian networks integrated with historical data, expert investigations, probability distribution calculations, discrepancy analysis, sensitivity analysis, and decision-making. A new expert investigation is proposed with small probability intervals, expert weights, confidence index, etc. After gaining expert judgment by expert investigation, Chauvenet's criterion is first introduced in a discrepancy analysis to eliminate outlier data from the expert judgment and obtain a more reliable value. The t distribution and its confidence interval are also adopted to determine the characteristic value of the survey data as a triangular fuzzy number. A conditional probability table of the model is integrated with historical data and prior knowledge through the weight index. Sensitivity analysis is used to identify the critical factors by changing the probability distribution of each factor and observing the related changes in the risk event. The proposed method ensures the accuracy and scientific rigor of the assessment and the diagnosis of a tunnel accident. This method is successfully applied to assess the collapse probability of the Yu Liao Tunnel.
机译:过度的结构变形或倒塌会导致人员伤亡和大量财产损失。本文提出了一种基于多状态模糊贝叶斯网络并结合历史数据,专家调查,概率分布计算,差异分析,敏感性分析和决策的新型综合风险评估方法。提出了一种新的专家调查方法,该方法具有较小的概率区间,专家权重,置信指数等。通过专家调查获得专家判断后,Chauvenet准则首先用于差异分析中,以从专家判断中消除异常数据并获得更可靠的价值。 。还采用t分布及其置信区间,将调查数据的特征值确定为三角模糊数。该模型的条件概率表通过权重索引与历史数据和先验知识集成在一起。敏感性分析用于通过更改每个因素的概率分布并观察风险事件中的相关变化来识别关键因素。所提出的方法确保了隧道事故评估和诊断的准确性和科学严谨性。该方法已成功地应用于评估于辽隧道的倒塌概率。

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