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Stochastic network DEA-R models for two-stage systems

Peter Wanke (COPPEAD Graduate Business School, Federal University of Rio de Janeiro, Rua Paschoal Lemme, Rio de Janeiro, Brazil)
Sahar Ostovan (Department of Mathematics, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran)
Mohammad Reza Mozaffari (Department of Mathematics, Shiraz Branch, Islamic Azad University, Shiraz, Iran)
Javad Gerami (Department of Mathematics, Shiraz Branch, Islamic Azad University, Shiraz, Iran)
Yong Tan (School of Management, University of Bradford, Bradford, UK)

Journal of Modelling in Management

ISSN: 1746-5664

Article publication date: 28 June 2022

Issue publication date: 28 April 2023

210

Abstract

Purpose

This paper aims to present two-stage network models in the presence of stochastic ratio data.

Design/methodology/approach

Black-box, free-link and fix-link techniques are used to apply the internal relations of the two-stage network. A deterministic linear programming model is derived from a stochastic two-stage network data envelopment analysis (DEA) model by assuming that some basic stochastic elements are related to the inputs, outputs and intermediate products. The linkages between the overall process and the two subprocesses are proposed. The authors obtain the relation between the efficiency scores obtained from the stochastic two stage network DEA-ratio considering three different strategies involving black box, free-link and fix-link. The authors applied their proposed approach to 11 airlines in Iran.

Findings

In most of the scenarios, when alpha in particular takes any value between 0.1 and 0.4, three models from Charnes, Cooper, and Rhodes (1978), free-link and fix-link generate similar efficiency scores for the decision-making units (DMUs), While a relatively higher degree of variations in efficiency scores among the DMUs is generated when the alpha takes the value of 0.5. Comparing the results when the alpha takes the value of 0.1–0.4, the DMUs have the same ranking in terms of their efficiency scores.

Originality/value

The authors innovatively propose a deterministic linear programming model, and to the best of the authors’ knowledge, for the first time, the internal relationships of a two-stage network are analyzed by different techniques. The comparison of the results would be able to provide insights from both the policy perspective as well as the methodological perspective.

Keywords

Citation

Wanke, P., Ostovan, S., Mozaffari, M.R., Gerami, J. and Tan, Y. (2023), "Stochastic network DEA-R models for two-stage systems", Journal of Modelling in Management, Vol. 18 No. 3, pp. 842-875. https://doi.org/10.1108/JM2-10-2021-0256

Publisher

:

Emerald Publishing Limited

Copyright © 2022, Emerald Publishing Limited

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