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首页> 外文期刊>European Journal of Operational Research >A dynamic multi-stage slacks-based measure data envelopment analysis model with knowledge accumulation and technological evolution
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A dynamic multi-stage slacks-based measure data envelopment analysis model with knowledge accumulation and technological evolution

机译:基于动态的多级狭缝措施数据包络分析模型,具有知识累积和技术演化

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摘要

Dynamic data envelopment analysis (DEA) models are built on the idea that single period optimization is not fully appropriate to evaluate the performance of decision making units (DMUs) through time. As a result, these models provide a suitable framework to incorporate the different cumulative processes determining the evolution and strategic behavior of firms in the economics and business literatures. In the current paper, we incorporate two distinct complementary types of sequentially cumulative processes within a dynamic slacks-based measure DEA model. In particular, human capital and knowledge, constituting fundamental intangible inputs, exhibit a cumulative effect that goes beyond the corresponding factor endowment per period. At the same time, carry-over activities between consecutive periods will be used to define the pervasive effect that technology and infrastructures have on the productive capacity and efficiency of DMUs. The resulting dynamic DEA model accounts for the evolution of the knowledge accumulation and technological development processes of DMUs when evaluating both their overall and per period efficiency. Several numerical examples and a case study are included to demonstrate the applicability and efficacy of the proposed method. (C) 2018 Elsevier B.V. All rights reserved.
机译:动态数据包络分析(DEA)模型构建了单周期优化不完全适合评估决策单位(DMUS)通过时间的表现。因此,这些模型提供了合适的框架,以纳入不同的累积过程,确定经济学和商业文献中公司的演变和战略行为。在目前的纸张中,我们在动态松弛的测量DEA模型中纳入了两个不同的互补类型的依次累积过程。特别是,构成基本无形投入的人力资本和知识表现出累计效应,超出了每期相应因素禀赋。与此同时,连续时期之间的随续集活动将用于定义技术和基础设施对DMU的生产能力和效率的普遍效应。由此产生的动态DEA模型占DMU的知识累积和技术开发过程的演变,当时的整体和每期效率。包括若干数值例子和案例研究以证明所提出的方法的适用性和功效。 (c)2018年elestvier b.v.保留所有权利。

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