基于帝国竞争算法的应急物资中心选址聚类模型

Haoran Wang, Zexuan Sun, Chengyang Liao, Wanru Cui, Qingyong Zhang
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引用次数: 0

摘要

本文以2017年波多黎各飓风救援为背景,引入基于约束多目标多源weber问题的k-means聚类模型,确定应急物资中心的最优位置,使道路点与应急物资中心之间的距离最小,医院与应急物资中心之间的加权距离最小。为了有效地解决上述模型,提出了一种新的帝国主义竞争算法(ICA),该算法将两种解与词典法进行比较。最后给出了实际数据的结果,证明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emergency Supplies Center Location Clustering Model Based on Imperialist Competitive Algorithm
In this paper, 2017's hurricane relief in Puerto Rico as the background, a k-means clustering model based on constrained multi-objective multi-sourced weber problem is introduced to determine the optimal locations of emergency material centers, which minimizes distance between road points and emergency supplies centers and weighted distance between hospitals and emergency supplies centers. To effectively solve the model aforementioned, a novel imperialist competitive algorithm (ICA) is proposed which compares two solutions with the lexicographical method. Finally, the results of real data are given and show the effectiveness in solving the problem.
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