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RAGA-FAHP Based Decision-Making Model for Normal High Water Level of a Reservoir

机译:基于RAGA-FAHP的水库正常高水位决策模型

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The decision-making of normal high water level of a reservoir is a complex and uncertainty problem. To avoid the qualitative and subjective defects of traditional decision-making methods, a novel method by means of fuzzy analytic hierarchy process (FAHP) combined with real coding based accelerating genetic algorithm (RAGA), is described in this paper. A fuzzy preferential relation matrix is established with the pairwise comparison of schemes for evaluation indexes. The consistency index coefficient (CIC) of optimum value satisfied with the minimizing condition is calculated by means of RAGA. Moreover, the best preference scheme is selected according to maximum subordination principle of general optimum value. Finally, a case is given to show the feasibility and effectiveness of this proposed model. The results from the application and comparison with the tradition FHAP method show that this proposed model used to optimize normal high water level of a reservoir is effective and objective and easy to operate.
机译:水库正常高水位的决策是一个复杂而又不确定的问题。为避免传统决策方法在质量和主观上的缺陷,提出了一种基于模糊层次分析法(FAHP)结合基于实数编码的加速遗传算法(RAGA)的新方法。通过评价指标方案的成对比较,建立了模糊偏好关系矩阵。通过RAGA计算满足最小化条件的最优值的一致性指标系数(CIC)。此外,根据一般最优值的最大从属原则选择最佳优先方案。最后,通过实例说明了该模型的可行性和有效性。应用和与传统FHAP方法的比较结果表明,所提出的用于优化水库正常高水位的模型是有效,客观和易于操作的。

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