Tunable linear feedback control of urban drainage systems using models defined purely from data

Travis Dantzer, B. Kerkez
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Abstract

Real-time and model-predictive control promises to make urban drainage systems (UDS) adaptive, coordinated, and dynamically optimal. Though early implementations are promising, existing control algorithms have drawbacks in computational expense, trust, system-level coordination, and labor cost. Linear feedback control has distinct advantages in computational expense, interpretation, and coordination. However, current methods for building linear feedback controllers require calibrated software models. Here we present an automated method for generating tunable linear feedback controllers that require only system response data. The controller design consists of three main steps: (1) estimating the network connectivity using tools for causal inference, (2) identifying a linear, time-invariant (LTI) dynamical system which approximates the network, and (3) designing and tuning a feedback controller based on the LTI urban drainage system approximation. The flooding safety, erosion prevention, and water treatment performance of the method are evaluated across 190 design storms on a separated sewer model. Strong results suggest that the system knowledge required for generating effective, safe, and tunable controllers for UDS is surprisingly basic. This method allows near-turnkey synthesis of controllers solely from sensor data or reduction of process-based models.
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使用纯粹由数据定义的模型对城市排水系统进行可调线性反馈控制
实时和模型预测控制有望使城市排水系统(UDS)实现自适应、协调和动态优化。虽然早期的实施很有前景,但现有的控制算法在计算费用、信任度、系统级协调和人力成本方面存在缺陷。线性反馈控制在计算费用、解释和协调方面具有明显优势。然而,目前构建线性反馈控制器的方法需要校准软件模型。在此,我们介绍一种只需系统响应数据即可生成可调线性反馈控制器的自动化方法。控制器设计包括三个主要步骤:(1) 使用因果推理工具估算网络连通性;(2) 确定近似网络的线性时不变 (LTI) 动力系统;(3) 根据 LTI 城市排水系统近似值设计和调整反馈控制器。在一个分离的下水道模型上,对 190 次设计暴雨中该方法的防洪安全、防侵蚀和水处理性能进行了评估。有力的结果表明,为 UDS 生成有效、安全和可调控制器所需的系统知识非常基础。这种方法可以仅通过传感器数据或基于过程的模型的缩减,近乎 "交钥匙 "地合成控制器。
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