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Statistical Analysis of Bridge Management System Inspection Data

机译:桥梁管理系统检验数据的统计分析

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Bridge inspection is essential for sustaining safe and well-performing transportation networks. The Ministry of Transportation of Ontario (MTO) bi-yearly inspects over 2800 bridges in Ontario, Canada. Then assigns each bridge a Bridge Condition Index (BCI) representing its performance level and required rehabilitation. As this is a time and resources consuming practice, this study explores the BCI trends which can allow a better control on inspection and maintenance scheduling. First, statistical analysis is conducted to identify the correlation of the bridge parameters with the BCI. The analysis reveals that the main parameters associated with BCI are bridge age, and time since last major and minor maintenances. Then, multivariate regression analysis is performed to establish a BCI prediction equation function of these parameters. The proposed framework can supplement existing practices for smarter inspection and maintenance scheduling.
机译:桥梁检查对于维持安全和良好的运输网络至关重要。 安大略省交通部(MTO)双年度在加拿大安大略省2800多家桥梁检查。 然后分配表示其性能级别和所需康复的桥接条件索引(BCI)。 由于这是一种时间和资源耗费实践,本研究探讨了BCI趋势,可以更好地控制检查和维护调度。 首先,进行统计分析以识别桥接参数与BCI的相关性。 该分析表明,与BCI相关的主要参数是桥梁年龄,并且自上一个主要和次要维持以来的时间。 然后,执行多变量回归分析以建立这些参数的BCI预测方程函数。 拟议的框架可以补充现有的智能检查和维护调度的实践。

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