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Flood disaster evaluation based on adaptive fuzzy clustering iterative model and hybrid differential evolution algorithm

机译:基于自适应模糊聚类迭代模型和混合差分演化算法的洪水灾害评估

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In order to reasonably and rapidly evaluate flood disaster, based on a fuzzy clustering iterative model (FCI) and differential evolution algorithm (DE), an adaptive fuzzy clustering iterative model using a hybrid differential evolution algorithm (AFCI-HDE) is proposed, which has three advantages: firstly, the decision-maker's subjective preference was considered to flexibly modify the objective function; secondly, HDE was introduced to optimize the index weight vector of AFCI; thirdly, the validity of its clustering effect was more credible than that of FCI. Finally, the case study revealed that AFCI-HDE is feasible and effective by comparing the optimal fitness and clustering validity values with other approaches, which could reflect various decision-maker's preferences by simple adaptive adjustments and rapidly obtain reasonable evaluation results, thus providing a new effective approach in flood risk management.
机译:为了合理迅速评估洪水灾难,基于模糊聚类迭代模型(FCI)和差分演进算法(DE),提出了一种使用混合差分演进算法(AFCI-HDE)的自适应模糊聚类迭代模型,具有 三个优点:首先,决策者的主观偏好被认为灵活地修改目标函数; 其次,引入了HDE以优化AFCI的指数重量载体; 第三,其聚类效应的有效性比FCI更可信。 最后,案例研究表明,通过将最佳的健身和聚类有效性与其他方法进行比较,AFCI-HDE是可行的,有效的是,通过简单的自适应调整,可以反映各种决策者的偏好,并迅速获得合理的评估结果,从而提供新的 洪水风险管理的有效方法。

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