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A multicriteria optimization model for cloud service provider selection in multicloud environments

机译:多罩环境中云服务提供商选择的多轨道优化模型

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Multicloud computing is a strategy that helps customers to reduce reliance on any single cloud provider (known as the vendor lock-in problem). The value of such strategy increases with proper selection of qualified service providers. In this paper, a constrained multicriteria multicloud provider selection mathematical model is proposed. Three metaheuristics algorithms (simulated annealing [SA], genetic algorithm [GA], and particle swarm optimization algorithm [PSO]) were implemented to solve the model, and their performance was studied and compared using a hypothetical case study. For the sake of comparison, Taguchi's robust design method was used to select the algorithms' parameters values, an initial feasible solution was generated using analytic hierarchy process (AHP)-as the most used method to solve the cloud provider selection problem in the literature, all three algorithms used that solution and, in order to avoid AHP limitations, another initial solution was generated randomly and used by the three algorithm in a second set of performance experiments. Results showed that SA, GA, PSO improved the AHP solution by 53.75%, 60.41%, and 60.02%, respectively, SA and PSO are robust because of reaching the same best solution in spite of the initial solution.
机译:Multiculoud Computing是一种策略,可帮助客户减少对任何单个云提供商的依赖(称为供应商锁定问题)。 The value of such strategy increases with proper selection of qualified service providers.本文提出了一种受约束的多轨道多箱提供者选择数学模型。实施了三种半导体算法(模拟退火[SA],遗传算法[GA]和粒子群优化算法[PSO])以解决该模型,并使用假设案例研究进行了研究和比较它们的性能。为了比较,使用Taguchi的鲁棒设计方法来选择算法的参数值,使用分析层次过程(AHP)生成初始可行解决方案 - 最常用的方法来解决文献中的云提供商选择问题。所有三种算法使用该解决方案,以避免AHP限制,在第二组性能实验中随机生成并使用另一种初始解决方案。结果表明,SA,PSO分别将AHP溶液改善53.75%,60.41%和60.02%,SA和PSO是强大的,因为尽管初始解决方案达到相同的解决方案。

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