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A BAYESIAN APPROACH FOR EFFECTIVE USE OF MULTIPLE MEASUREMENTS OF CRACK DEPTHS

机译:一种有效地利用多重测量裂缝深度的贝叶斯方法

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A Bayesian methodology was applied to use data from multiple inline inspection (ILI) runs and field measurements with non-destructive examination (NDE) tools to increase confidence in crack size estimates. Multiple crack depth measurements were used in two different ways-namely, to improve the characterization of ILI sizing error bias and to update the maximum depth distribution of individual crack features. This methodology was applied to selected datasets from an industrywide database for crack ILI data collected over a series of Pipeline Research Council International (PRCI) projects. The results of the approach are presented for two datasets, showing reduced variance in sizing error bias and improved confidence in crack depth estimates. In addition to the PRCI datasets, an additional dataset was collected and used to investigate the effect of multiple ILI runs on estimates of rate of detection and depth distribution of undetected features. The results of this analysis are also summarized.
机译:应用了贝叶斯方法,用于使用来自多个内联检查(ILI)的数据运行和现场测量,并使用非破坏性检查(NDE)工具来增加对裂缝大小估计的置信度。以两种不同的方式使用多种裂纹深度测量 - 即,改善ILI大小误差偏差的表征,并更新各个裂纹特征的最大深度分布。该方法应用于来自世贸数据库的所选数据集,用于收集一系列管道研究委员会国际(PRCI)项目的裂缝ILI数据。该方法的结果呈现两个数据集,显示出尺寸误差偏差和改善对裂缝深度估计的置信度的降低方差。除了PRCI数据集之外,收集了一个额外的数据集并用于调查多伊利尔在未检测到的特征的检测率和深度分布率上运行的效果。该分析的结果也总结了。

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