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A multi-objective optimization decision support model for renewal planning of sewer networks

机译:下水道网络更新规划的多目标优化决策支持模型

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摘要

This paper discusses the application of the proposed approach to implement a GIS-based Decision Support System (DSS) to support the renewal planning of sewer networks. The approach involves several steps addressing condition rating, risk assessment, and prioritization of sewers. It also incorporates a procedure for identifying and selecting the most suitable renewal technologies. A genetic algorithm (GA)-based multi-objective optimization (MOO) technique is used to find a Pareto front and identify a set of feasible solutions, in which a set of sewers is selected for renewal each year, along with the associated costs and expected benefits in terms of condition improvement and risk reduction. The paper also presents an example application of the prototype DSS on the sewer network in Regina, Canada.
机译:本文讨论了所提出的方法在实施基于GIS的决策支持系统(DSS)以支持下水道网络更新规划中的应用。该方法涉及解决条件等级,风险评估和下水道优先排序的几个步骤。它还包含了用于识别和选择最合适的更新技术的过程。基于遗传算法(GA)的多目标优化(MOO)技术用于查找Pareto前沿并确定一组可行的解决方案,其中每年选择一组下水道进行更新,以及相关的成本和在改善状况和降低风险方面的预期收益。本文还介绍了DSS原型在加拿大里贾纳的下水道网络中的示例应用。

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