Evaluation of innovation efficiency of high-tech enterprise based on DEA and Malmquist index under the background of sustainable development

IF 3.9 Q2 BUSINESS
Liwei Wang, Tianbo Tang
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Abstract

Purpose This paper aims to promote the higher quality development of high-tech enterprises in China. While science and technology have greatly promoted human civilization, resources have been excessively consumed and the environment has been sharply polluted. Therefore, it is particularly important for current enterprises to make use of scientific and technological innovation to maximize the benefits of mankind, minimize the loss of nature, and promote the sustainable development of our country. Design/methodology/approach By using DEA-Banker-Charnes-Cooper (BCC) model and DEA-Malmquist model, this paper comprehensively examines the innovation efficiency of high-tech enterprises from both static and dynamic perspectives, and conducts a provincial comparative study with the panel data of ten representative provinces from 2011 to 2020. Findings The research findings are as follows: the rapid number increase of high-tech enterprises in most provinces (cities) is accompanied by an ineffective input–output efficiency; the quality of high-tech enterprises needs to comprehensively examine both input–output efficiency and total factor productivity; and there is not a positive correlation between element investment and innovation performance. Research limitations/implications Because the DEA model used in this paper assumes that the improvement direction of invalid units is to ensure that the input ratio of various production factors remains unchanged but sometimes the proportion of scientific and technological activities personnel and the total research and development investment is not constant. In the future, the nonradial DEA model can be considered for further research. Due to historical data statistics, more provinces, cities and longer panel data are difficult to obtain. The samples studied in this paper mainly refer to the provinces and cities that ranked first in the number of national high-tech enterprises in 2020. Limited by the number of samples, DEA analysis failed to select more input and output indicators. In the future, with the accumulation of statistical data, the existing efficiency analysis will be further optimized. Originality/value Aiming at the misunderstanding of emphasizing quantity and neglecting quality in the cultivation of high-tech enterprises, this paper comprehensively uses DEA-BCC model and DEA Malmquist index decomposition method to make a comprehensive comparative study on the development of high-tech enterprises in ten representative provinces (cities) from two aspects of static efficiency evaluation and dynamic efficiency evaluation.
可持续发展背景下基于 DEA 和 Malmquist 指数的高科技企业创新效率评价
本文旨在促进中国高新技术企业更高质量的发展。科学技术在极大促进人类文明发展的同时,也造成了资源的过度消耗和环境的严重污染。设计/方法/途径本文利用 DEA-Banker-Charnes-Cooper(BCC)模型和 DEA-Malmquist 模型,从静态和动态两个角度全面考察了高新技术企业的创新效率,并利用 2011-2020 年十个代表性省份的面板数据进行了省域比较研究。研究结论研究结论如下:大多数省(市)高新技术企业数量的快速增长伴随着投入产出效率的低下;高新技术企业的质量需要综合考察投入产出效率和全要素生产率;要素投入与创新绩效之间不存在正相关关系。研究局限性/启示由于本文采用的 DEA 模型假定无效单元的改进方向是保证各种生产要素的投入比例不变,但有时科技活动人员比例和研发总投入并不恒定。今后可以考虑采用非径向 DEA 模型进行进一步研究。由于历史数据统计的原因,难以获得更多省市、更长时间的面板数据。本文研究的样本主要是 2020 年国家高新技术企业数量排名第一的省市。受样本数量的限制,DEA 分析未能选取更多的投入产出指标。原创性/价值针对高新技术企业培育中重数量、轻质量的误区,本文综合运用 DEA-BCC 模型和 DEA Malmquist 指数分解方法,从静态效率评价和动态效率评价两个方面对十个代表性省(市)的高新技术企业发展情况进行了综合比较研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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