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Risk assessment for pipelines with active defects based on artificial intelligence methods

机译:基于人工智能方法的活动缺陷管道风险评估

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The paper provides another insight into the pipeline risk assessment for in-service pressure piping containing defects. Beside of the traditional analytical approximation methods or sampling-based methods safety index and failure probability of pressure piping containing defects will be obtained based on a novel type of support vector machine developed in a minimax manner. The safety index or failure probability is carried out based on a binary classification approach. The procedure named classification reliability procedure, involving a link between artificial intelligence and reliability methods was developed as a user-friendly computer program in MATLAB language. To reveal the capacity of the proposed procedure two comparative numerical examples replicating a previous related work and predicting the failure probabilities of pressured pipeline with defects were presented.
机译:本文为包含缺陷的在役压力管道的管道风险评估提供了另一种见解。除传统的分析近似方法或基于采样的方法外,还将基于以minimax方式开发的新型支持向量机,获得包含缺陷的压力管道的安全指标和失效概率。安全指数或故障概率是根据二进制分类方法进行的。该程序被称为分类可靠性程序,它涉及人工智能和可靠性方法之间的联系,已被开发为使用MATLAB语言的用户友好型计算机程序。为了揭示所提出程序的能力,提出了两个比较数值示例,它们复制了以前的相关工作并预测了带有缺陷的压力管道的失效概率。

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