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Maintenance optimization of infrastructure networks using genetic algorithms

机译:使用遗传算法对基础设施网络进行维护优化

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摘要

This paper presents an approach to determining the optimal set of maintenance alternatives for a network of infrastructure facilities using genetic algorithms. Optimal maintenance alternatives are those solutions that minimize the life-cycle cost of an infrastructure network while fulfilling reliability and functionality requirements over a given planning horizon. Genetic algorithms are applied to maintenance optimization because of their robust search capabilities that resolve the computational complexity of large-size optimization problems. In the proposed approach, Markov-chain models are used for predicting the performance of infrastructure facilities because of their ability to capture the time-dependence and uncertainty of the deterioration process, maintenance operations, and initial condition, as well as their practicality for network level analysis. Data obtained from the Ministere des Transports du Quebec database are used to demonstrate the feasibility and capability of the proposed approach in programming the maintenance of concrete bridge decks.
机译:本文提出了一种使用遗传算法确定基础设施网络的最佳维护方案集的方法。最佳维护替代方案是那些解决方案,它们可以最大限度地减少基础架构网络的生命周期成本,同时在给定的计划范围内满足可靠性和功能性要求。遗传算法因其强大的搜索功能可解决大型优化问题的计算复杂性而被应用于维护优化。在提出的方法中,马尔可夫链模型用于预测基础设施的性能,因为它们具有捕获恶化过程,维护操作和初始条件的时间依赖性和不确定性的能力,以及它们在网络级别上的实用性分析。从魁北克交通运输部数据库中获得的数据用于证明所提出的方法在对混凝土桥面板进行维护编程中的可行性和能力。

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