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Leveraging open source software and parallel computing for model predictive control of urban drainage systems using EPA-SWMM5

机译:利用开源软件和并行计算,使用EPA-SWMM5对城市排水系统进行模型预测控制

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Active stormwater control will play an increasingly important role in mitigating urban flooding, which is becoming more common with climate change and sea level rise. In this paper we describe and demonstrate swmm_mpc, software developed for simulating model predictive control (MPC) for urban drainage systems using open source software (Python and the EPA Stormwater Management Model version 5 (SWMM5)). Swmm_mpc uses an evolutionary algorithm as an optimizer and supports parallel processing. In the demonstration case for a hypothetical, tidally-influenced urban drainage system, the swmm_mpc control policies for two storage units achieved its objectives of 1) practically eliminating flooding and 2) maintaining the water level at the storage units close to a target level. Although the current swmm_mpc workflow was feasible for a simple model using a desktop PC, a high-performance computer or cloud-based computer with more computational cores would likely be needed for most real-world models.
机译:积极的雨水控制将在缓解城市洪灾中发挥越来越重要的作用,随着气候变化和海平面上升,城市洪灾变得越来越普遍。在本文中,我们描述并演示了swmm_mpc,该软件是使用开源软件(Python和EPA雨水管理模型版本5(SWMM5))用于模拟城市排水系统的模型预测控制(MPC)的软件。 Swmm_mpc使用进化算法作为优化器,并支持并行处理。在一个假设性的,受潮汐影响的城市排水系统的演示案例中,两个存储单元的swmm_mpc控制策略实现了以下目标:1)实际消除洪水; 2)将存储单元的水位保持在目标水平附近。尽管当前的swmm_mpc工作流程对于使用台式PC的简单模型是可行的,但对于大多数实际模型,可能需要具有更多计算核心的高性能计算机或基于云的计算机。

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