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Strategies to Develop Warm Solutions for Real-Time Pump Scheduling for Water Distribution Systems

机译:开发用于配水系统实时泵调度的热解决方案的策略

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An optimal pump operation schedule that maintains satisfactory hydraulics conditions can generally reduce energy consumptions compared to the traditional trial and error based pump operation schedule. Linking an evolutionary based optimization algorithm with a hydraulic simulation model has gained attention for obtaining the optimal schedule. However, this technique requires significant computation time and thus has difficulty in real-time implementation. This paper presents several tactics to generate warm solutions that can be used in the initial population of the evolutionary algorithms to reduce the computation times. Strategies to generate warm solutions include the use of linear programming, surrogate model known as machine learning or meta-model, and historical pump schedule for similar demand pattern. Providing warm solutions from approximate methods or previous day's results to stochastic search methods can improve solution convergence and offers significant computation time benefits. Results obtained from different strategies are compared.
机译:与传统的基于试错法的泵运行时间表相比,维持令人满意的液压条件的最佳泵运行时间表通常可以减少能耗。将基于进化的优化算法与水力仿真模型联系在一起,已引起人们对获得最佳调度的关注。但是,该技术需要大量的计算时间,因此难以实时实施。本文提出了几种生成热解的策略,可将其用于进化算法的初始种群以减少计算时间。产生有效解决方案的策略包括使用线性规划,被称为机器学习或元模型的替代模型以及类似需求模式的历史泵计划。提供从近似方法或前一天的结果到随机搜索方法的有效解决方案可以改善解决方案的收敛性,并显着提高计算时间。比较从不同策略获得的结果。

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