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Data-driven control of water reservoirs using El Niño Southern Oscillation indexes

机译:厄尔尼诺南方涛动指数的数据驱动水库控制

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摘要

Advanced modeling and control contribute to the design of efficient and sustainable water management strategies, which are challenged by the increasing frequency and intensity of extreme events often associated with large-scale climate signals, such as El Niño Southern Oscillation (ENSO). Despite ENSO-related information provides a great opportunity to make the operations of water systems more flexible and adaptive, incorporating it into an operating policy still represents a major challenge for optimal control algorithms. In this work, we contribute a framework combining Input Variable Selection techniques for ENSO detection with a data-driven control strategy to use this information for improving the system operations. Our framework is demonstrated on the control of the multipurpose Hoa Binh reservoir (Vietnam), showing that ENSO teleconnection represents a valuable information for addressing the performance tradeoffs between energy production, water supply, and flood protection.
机译:先进的建模和控制有助于设计高效,可持续的水资源管理策略,而这些挑战经常受到与大型气候信号(例如厄尔尼诺南方涛动(ENSO))相关的极端事件发生频率和强度的挑战。尽管ENSO的相关信息为使水系统的运行更加灵活和适应性提供了巨大的机会,但将其纳入运行策略仍然是优化控制算法的主要挑战。在这项工作中,我们提供了一个框架,该框架将用于ENSO检测的输入变量选择技术与数据驱动的控制策略结合起来,以使用此信息来改善系统操作。我们的框架在多功能的Hoa Binh水库(越南)的控制上得到了证明,表明ENSO远程连接代表了宝贵的信息,可解决能源生产,供水和防洪之间的性能折衷。

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