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Assessing R&D efficiency using a two-stage dynamic DEA model: A case study of research institutes in the Chinese Academy of Sciences

机译:使用两阶段动态DEA模型评估研发效率:以中国科学院研究机构为例

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Various studies have been devoted to the evaluation of the research and development (R&D) performances of universities and research institutes. However, existing studies tend to focus on static systems, that is, systems with no intertemporal effect. To tackle this issue, this study attempts to assess relative R&D efficiency of institutes from a dynamic perspective. The unified two-stage model proposed by Kao (2017) made a contribution to combining division efficiencies in the multiplier form with frontier projections in the envelopment form in a unified framework. We develop his model in a dynamic framework into which the effects of carry-over activities are embedded across the period. If the dynamic effects in the efficiency measures are not considered, the results will be biased. This is one of the few studies to examine dynamic effects within the framework of the R&D process. Our analysis is based on samples of 17 research institutes in the Chinese Academy of Sciences over the period of 2012-2015. When compared with the proposed data envelope analysis (DEA) model, results show that the static DEA model may underestimate the R&D efficiency scores. The institutes experienced significant improvements in system efficiency, mainly due to the improvements in transfer efficiency. However, there is still much room for improvement in transferring scientific and technological (S&T) achievements. We also find that the resource scale played an important role in influencing basic research. Finally, the projections of inefficient institutes indicate that most institutes had insufficient carry-over inputs (newly approved projects and management cost) based on the average four-year values, and existing slack resources for managers to improve the future performance. (C) 2018 Elsevier Ltd. All rights reserved.
机译:已经进行了各种研究来评估大学和研究机构的研发(R&D)绩效。但是,现有研究倾向于集中在静态系统上,即没有时间跨度影响的系统。为了解决这个问题,本研究试图从动态角度评估机构的相对研发效率。 Kao(2017)提出的统一的两阶段模型为将乘数形式的除法效率与包络形式的边界投影在一个统一框架中结合做出了贡献。我们在一个动态框架中开发他的模型,在此框架中嵌入了结转活动的影响。如果不考虑效率措施中的动态影响,结果将是有偏差的。这是在研发过程框架内研究动态影响的少数研究之一。我们的分析基于2012年至2015年间中国科学院17家研究机构的样本。与建议的数据包络分析(DEA)模型相比,结果表明静态DEA模型可能会低估研发效率得分。这些研究所的系统效率有了显着提高,这主要归功于传输效率的提高。但是,在转让科学技术成就方面仍有很大的改进空间。我们还发现资源规模在影响基础研究中起着重要作用。最后,效率低下的研究所的预测表明,根据四年的平均价值,大多数研究所的结转投入(新批准的项目和管理成本)不足,并且管理者现有的闲置资源用于改善未来绩效。 (C)2018 Elsevier Ltd.保留所有权利。

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