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Application of genetic algorithms and fuzzy control to a combined sewer pumping station

机译:遗传算法和模糊控制在下水道联合泵站中的应用

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In the present study, fuzzy logic control and genetic algorithms are applied to achieve improved pump operations in a combined sewer pumping station. Pumping rates are determined by fuzzy inference and fuzzy control rules corresponding to input variables. Genetic algorithms are used to automatically improve the fuzzy control rules through genetic operations such as selection, crossover and mutation. The effects of different fitness functions and learning conditions are investigated using a stormwater runoff model. It is found that current pump operations can be improved by adding the sewer water quality to the input variables and to the fitness function; the improved operations can reduce not only floods in the drainage area but also pollutant loads discharged to the receiving waters.
机译:在当前的研究中,模糊逻辑控制和遗传算法被应用来改善下水道联合泵站的泵操作。抽水率由与输入变量相对应的模糊推理和模糊控制规则确定。遗传算法用于通过遗传操作(例如选择,交叉和变异)自动改善模糊控制规则。使用雨水径流模型研究了不同适应功能和学习条件的影响。已经发现,通过将下水道水质添加到输入变量和适应度函数中,可以改善当前的泵操作。改进的操作不仅可以减少流域的洪水,而且可以减少排放到接收水的污染物负荷。

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