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Adaptive, multiobjective optimal sequencing approach for urban water supply augmentation under deep uncertainty

机译:深度不确定性下城市供水的自适应多目标最优排序方法

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摘要

Optimal long-term sequencing and scheduling play an important role in many water resources problems. The optimal sequencing of urban water supply augmentation options is one example of this. In this paper, an adaptive, multiobjective optimal sequencing approach for urban water supply augmentation under deep uncertainty is introduced. As part of the approach, optimal long-term sequence plans are updated at regular intervals and trade-offs between the robustness and flexibility of the solutions that have to be fixed at the current time and objectives over the entire planning horizon are considered when selecting the most appropriate course of action. The approach is demonstrated for the sequencing of urban water supply augmentation options for the southern Adelaide water supply system for two assumed future realities. The results demonstrate the utility of the proposed approach, as it is able to identify optimal sequences that perform better than those obtained using static approaches.
机译:最佳的长期排序和调度在许多水资源问题中起着重要作用。城市供水增加方案的最佳排序就是一个例子。本文介绍了在不确定性较大的情况下城市供水量增加的自适应多目标最优排序方法。作为该方法的一部分,定期更新最佳的长期序列计划,并在当前必须固定的解决方案的健壮性和灵活性之间进行权衡,选择方案时要考虑整个规划范围内的目标。最合适的行动方案。在两个假定的未来现实中,该方法可用于对阿德莱德南部供水系统的城市供水增加方案进行排序。结果证明了该方法的实用性,因为它能够识别出比使用静态方法获得的序列更好的最佳序列。

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