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Multivariate probability distribution for sewer system vulnerability assessment under data-limited conditions

机译:数据受限条件下下水道系统脆弱性评估的多元概率分布

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The lack of geometrical and hydraulic information about sewer networks often excludes the adoption of in-deep modeling tools to obtain prioritization strategies for funds management. The present paper describes a novel statistical procedure for defining the prioritization scheme for preventive maintenance strategies based on a small sample of failure data collected by the Sewer Office of the Municipality of Naples (IT). Novelty issues involve, among others, considering sewer parameters as continuous statistical variables and accounting for their interdependences. After a statistical analysis of maintenance interventions, the most important available factors affecting the process are selected and their mutual correlations identified. Then, after a Box-Cox transformation of the original variables, a methodology is provided for the evaluation of a vulnerability map of the sewer network by adopting a joint multivariate normal distribution with different parameter sets. The goodness-of-fit is eventually tested for each distribution by means of a multivariate plotting position. The developed methodology is expected to assist municipal engineers in identifying critical sewers, prioritizing sewer inspections in order to fulfill rehabilitation requirements.
机译:由于缺乏有关下水道网络的几何和水力信息,通常无法采用深层建模工具来获得资金管理的优先策略。本文介绍了一种新颖的统计程序,用于根据那不勒斯市下水道办事处(IT)下水道办事处收集的少量故障数据来定义预防性维护策略的优先级方案。除其他外,新颖性问题涉及将下水道参数视为连续的统计变量并考虑其相互依赖性。在对维护干预措施进行统计分析之后,选择影响过程的最重要的可用因素,并确定它们之间的相互关系。然后,在对原始变量进行Box-Cox转换后,通过采用具有不同参数集的联合多元正态分布,提供了一种用于评估下水道网络脆弱性图的方法。最终,通过多元绘图位置针对每个分布测试拟合优度。预期所开发的方法将协助市政工程师识别关键的下水道,优先进行下水道检查,以满足恢复要求。

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