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A novel customer-centric Methodology for Optimal Service Selection (MOSS) in a cloud environment

机译:在云环境中以客户为中心的新型最佳服务选择方法(MOSS)

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Cloud service selection decision has become tremendously challenging because of the exponential proliferation of cloud services. A judicious decision necessitates a thorough evaluation of services from sundry perspectives. While most existing studies evaluate services from the Quality of Service (QoS) perspective, they overlook the degree of delight or annoyance of a service user i.e. Quality of Experience (QoE). Likewise, the literature lacks an integrated methodology to (1) incorporate both QoS and QoE in decision making (2) develop a consensus between the contradictory outputs of Multicriteria Decision Making (MCDM) methods. To address these issues, we propose a novel integrated approach called Methodology for Optimal Service Selection (MOSS). MOSS consists of five stages including the prequel, assessment, ranking, integration, and consolidation/selection. MOSS enables decision-makers to select optimal cloud service with consensus considering both QoS and QoE. In the prequel stage, we introduce Pareto optimality to shrink search space and identify dominant services. In the assessment stage, we use the best worst method to calculate weights of QoS/QoE criteria. We employ a multi-MCDM approach consisting of eminent existing MCDM techniques to obtain QoS, and QoE based ranks in the ranking stage. We obtain and compare the integrated ranks of each method in the integration stage. We obtain the consolidated ranks of cloud services using the Copelands' method. To verify the efficacy/practicability, we implement MOSS in the context of an e-commerce company facing a cloud service selection decision. Further, we perform a comprehensive analysis considering a comparative analysis and complexity analysis. The results show MOSS is practical and useful.
机译:由于云服务呈指数级增长,因此云服务选择决策已变得非常具有挑战性。明智的决定需要从各种角度全面评估服务。尽管大多数现有研究从服务质量(QoS)角度评估服务,但它们忽略了服务用户的愉悦或烦恼程度,即体验质量(QoE)。同样,文献缺乏一种综合的方法来(1)在决策中结合QoS和QoE(2)在多准则决策(MCDM)方法的矛盾输出之间达成共识。为了解决这些问题,我们提出了一种称为“最佳服务选择方法”(MOSS)的新颖集成方法。 MOSS包括五个阶段,包括前传,评估,排名,整合和合并/选择。 MOSS使决策者能够在考虑QoS和QoE的前提下选择具有共识的最佳云服务。在前传阶段,我们引入Pareto最优性以缩小搜索空间并确定主导服务。在评估阶段,我们使用最佳最差方法来计算QoS / QoE标准的权重。我们采用由著名的现有MCDM技术组成的多MCDM方法来获得QoS,并在排名阶段使用基于QoE的排名。我们在整合阶段获得并比较每种方法的综合等级。我们使用Copelands的方法获得云服务的综合排名。为了验证有效性/实用性,我们在一家面临云服务选择决策的电子商务公司的环境中实施了MOSS。此外,我们会考虑比较分析和复杂性分析来进行全面分析。结果表明,MOSS是实用且有用的。

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