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A decision-making approach based on fuzzy AHP-TOPSIS methodology for selecting the appropriate cloud solution to manage big data projects

机译:基于模糊AHP-TOPSIS方法的决策方法,用于选择合适的云解决方案来管理大数据项目

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The objective of this paper is to propose a hybrid decision-making methodology based on affinity diagram, fuzzy analytic hierarchy process (FAHP) and fuzzy technique for order preference by similarity to ideal solution (FTOPSIS) to evaluate, rank and select the most appropriate cloud solutions to accommodate and manage big data projects. In fact, the strategic priority of many corporations consists in the creation of competitive advantages by using new available technologies, processes and governance mechanisms, such as big data and cloud computing. Since the technology is permanently subject to advances and developments, the question for many businesses is how to benefit from big data using the power of technical flexibility that cloud computing can provide. In this context, selecting the most adequate cloud solution to host big data projects is a complex issue that requires an extensive evaluation process. Thus, to assist users to efficiently select their most preferred cloud solution, we propose a hybrid decision-making methodology that meets these requirements in four stages. In the first stage, the identification of evaluation criteria is performed by a decision-making committee using Affinity Diagram. Due to the varied importance of the selected criteria, a FAHP process is used in the second stage to assign the importance weights for each criterion, while FTOPSIS process, in the third stage, employs these weighted criteria as inputs to evaluate and measure the performance of each alternative. In the last step, a sensitivity analysis is performed to evaluate the impact of criteria weights on the final rankings of alternatives.
机译:本文的目的是提出一种基于亲和图,模糊分析层次过程(FAHP)和模糊技术的混合决策方法,该方法类似于与理想解决方案(FTOPSIS)相似的顺序偏好,以评估,排序和选择最合适的云容纳和管理大数据项目的解决方案。实际上,许多公司的战略重点在于通过使用新的可用技术,流程和治理机制(例如大数据和云计算)来创造竞争优势。由于该技术永远受到进步和发展的影响,许多企业面临的问题是如何利用云计算所提供的技术灵活性从大数据中受益。在这种情况下,选择最合适的云解决方案来托管大数据项目是一个复杂的问题,需要广泛的评估过程。因此,为了帮助用户有效地选择他们最喜欢的云解决方案,我们提出了一种混合决策方法,可以在四个阶段满足这些要求。在第一阶段,评估标准的确定由决策委员会使用亲和图执行。由于所选标准的重要性各不相同,第二阶段使用FAHP流程为每个准则分配重要性权重,而第三阶段FTOPSIS流程则使用这些加权准则作为输入,以评估和衡量企业的绩效。每个替代方案。在最后一步中,进行敏感性分析以评估标准权重对替代方案最终排名的影响。

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