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Deduction of reservoir operating rules for application in global hydrological models

机译:扣除全球水文模型中申请的水库经营规则

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A big challenge in constructing global hydrological models is the inclusion of anthropogenic impacts on the water cycle, such as caused by dams. Dam operators make decisions based on experience and often uncertain information. In this study information generally available to dam operators, like inflow into the reservoir and storage levels, was used to derive fuzzy rules describing the way a reservoir is operated. Using an artificial neural network capable of mimicking fuzzy logic, called the ANFIS adaptive-network-based fuzzy inference system, fuzzy rules linking inflow and storage with reservoir release were determined for 11 reservoirs in central Asia, the US and Vietnam. By varying the input variables of the neural network, different configurations of fuzzy rules were created and tested. It was found that the release from relatively large reservoirs was significantly dependent on information concerning recent storage levels, while release from smaller reservoirs was more dependent on reservoir inflows. Subsequently, the derived rules were used to simulate reservoir release with an average Nash-Sutcliffe co-efficient of 0.81.
机译:构建全球水文模型的一个大挑战是包含对水循环的人为影响,例如由坝引起的。大坝运营商根据经验和经常提供的信息做出决定。在这项研究中,通常可用于DAM运营商的信息,如流入储存器和存储水平,用于导出描述储层操作方式的模糊规则。使用能够模仿模糊逻辑的人工神经网络,称为基于ANFIS自适应网络的模糊推理系统,在中亚,美国和越南的11个水库中确定了将流入和储存的模糊规则连接到储存器释放。通过改变神经网络的输入变量,创建和测试了不同的模糊规则的配置。有发现,来自相对大的水库的释放显着取决于有关近期储存水平的信息,而来自较小水库的释放更依赖于储层流入。随后,衍生的规则用于模拟储层释放,平均纳什 - Sutcliffe共同效率为0.81。

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