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Returns to scale and most productive scale size in DEA with negative data

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  • Sahoo, Biresh K
  • Khoveyni, Mohammad
  • Eslami, Robabeh
  • Chaudhury, Pradipta

Abstract

Non-parametric evaluation of returns to scale of production units in standard DEA models becomes problematic when their underlying technologies involve negative data. The methodology recently offered by Allahyar and Rostamy-Malkhalifeh (2015) (hence after called ARM model) is of some help to deal with this issue. However, there are two shortcomings underlying the ARM model. First, it may not be capable of locating all the production units exhibiting constant returns to scale; and second, it is also not able to determine most productive scale size. In order to deal with these two shortcomings, the current paper contributes to the DEA literature in two ways. First, it makes a unifying attempt to propose a general non-radial DEA model to determine both the most productive scale size and the returns to scale characterizations of production units in the presence of negative data. Second, the proposed model can be adapted in a dynamic DEA technology setting to determine growth efficiency and returns to growth behavior of production units facing hyper competition in a new economy.

Suggested Citation

  • Sahoo, Biresh K & Khoveyni, Mohammad & Eslami, Robabeh & Chaudhury, Pradipta, 2016. "Returns to scale and most productive scale size in DEA with negative data," European Journal of Operational Research, Elsevier, vol. 255(2), pages 545-558.
  • Handle: RePEc:eee:ejores:v:255:y:2016:i:2:p:545-558
    DOI: 10.1016/j.ejor.2016.05.065
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    5. Zhang, Yue-Jun & Chen, Ming-Ying, 2018. "Evaluating the dynamic performance of energy portfolios: Empirical evidence from the DEA directional distance function," European Journal of Operational Research, Elsevier, vol. 269(1), pages 64-78.
    6. Pérez-López, Gemma & Prior, Diego & Zafra-Gómez, José L., 2018. "Temporal scale efficiency in DEA panel data estimations. An application to the solid waste disposal service in Spain," Omega, Elsevier, vol. 76(C), pages 18-27.
    7. Claudio Quintano & Paolo Mazzocchi & Antonella Rocca, 2020. "A competitive analysis of EU ports by fixing spatial and economic dimensions," Journal of Shipping and Trade, Springer, vol. 5(1), pages 1-19, December.
    8. Mohsin, Muhammad & Hanif, Imran & Taghizadeh-Hesary, Farhad & Abbas, Qaiser & Iqbal, Wasim, 2021. "Nexus between energy efficiency and electricity reforms: A DEA-Based way forward for clean power development," Energy Policy, Elsevier, vol. 149(C).
    9. Hajar Haghighatpisheh & Sohrab Kordrostami & Alireza Amirteimoori & Farhad Hosseinzadeh Lotfi, 2022. "Optimal scale sizes in input–output allocative data envelopment analysis models," Annals of Operations Research, Springer, vol. 315(2), pages 1455-1476, August.
    10. Eshagh Esfandiar & Robabeh Eslami & Mohammad Khoveyni & Alireza Gilani, 2023. "Identifying the closest most productive scale size unit in data envelopment analysis," OR Spectrum: Quantitative Approaches in Management, Springer;Gesellschaft für Operations Research e.V., vol. 45(2), pages 623-660, June.

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