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A new integrated AR-IDEA model to find the best DMU in the presence of both weight restrictions and imprecise data

机译:一种新的集成式AR-IDEA模型,可以在存在重量限制和数据不精确的情况下找到最佳DMU

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摘要

Data envelopment analysis (DEA) is a mathematical programming approach to efficiency measurement in many applications. In some real-life applications, three situations are established. First, the input and output data are imprecise. Second, it is necessary to use the weight restrictions in order to consider the management view. Third, the decision maker needs to find the best decision making units (DMUs). In the traditional DEA model, it is supposed that the input and output data are precise and the weights are free. This paper proposes a new mixed integer assurance-region imprecise DEA (AR-IDEA) model to find the best DMU by solving only one model. Also, a new algorithm is developed to find and rank the other efficient DMUs by using the proposed model. Indeed, the proposed approach can be used to find and rank the best DMUs in real-life applications. A numerical example of the supplier selection problem is provided to show the usefulness and effectiveness of the proposed approach.
机译:数据包络分析(DEA)是一种在许多应用程序中进行效率测量的数学编程方法。在某些实际应用中,建立了三种情况。首先,输入和输出数据不精确。其次,有必要使用权重限制以考虑管理观点。第三,决策者需要找到最佳的决策单位(DMU)。在传统的DEA模型中,假定输入和输出数据是精确的,权重是免费的。本文提出了一种新的混合整数保证区域不精确DEA(AR-IDEA)模型,以通过仅求解一个模型来找到最佳DMU。此外,通过使用提出的模型,开发了一种新算法来查找和排序其他有效DMU。实际上,所提出的方法可用于在现实生活中找到最佳DMU并对其进行排名。提供了一个供应商选择问题的数值示例,以显示所提出方法的有用性和有效性。

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