A new non-radial directional distance model for data envelopment analysis problems with negative and flexible measures

被引:16
|
作者
Tavana, Madjid [1 ,2 ]
Izadikhah, Mohammad [3 ]
Toloo, Mehdi [4 ,5 ]
Roostaee, Razieh [6 ]
机构
[1] La Salle Univ, Business Syst & Analyt Dept, Distinguished Chair Business Analyt, Philadelphia, PA 19141 USA
[2] Univ Paderborn, Fac Business Adm & Econ, Business Informat Syst Dept, D-33098 Paderborn, Germany
[3] Islamic Azad Univ, Coll Sci, Dept Math, Arak Branch, Arak, Iran
[4] Tech Univ Ostrava, Fac Econ, Dept Syst Engn, Ostrava, Czech Republic
[5] Sultan Qaboos Univ, Coll Econ & Polit Sci, Dept Operat Management & Business Stat, Muscat, Oman
[6] Islamic Azad Univ, Arak Branch, Young Researchers & Elite Club, Arak, Iran
关键词
Data envelopment analysis; Negative data; Directional distance function; Flexible measures; Productivity; Supplier selection; Automotive industry; SLACKS-BASED MEASURE; ORIENTED RADIAL MEASURE; CLASSIFYING INPUTS; SUPPLIER SELECTION; DECISION-MAKING; SUPER-EFFICIENCY; DEA; OUTPUTS; PERFORMANCE; PRODUCTIVITY;
D O I
10.1016/j.omega.2020.102355
中图分类号
C93 [管理学];
学科分类号
12 ; 1201 ; 1202 ; 120202 ;
摘要
Data envelopment analysis (DEA) is a mathematical approach for evaluating the efficiency of decision making units that convert multiple inputs into multiple outputs. Traditional DEA models measure technical (radial) efficiencies by assuming the input and output status of each performance measure is known, and the data associated with the performance measures are non-negative. These assumptions are restrictive and limit the applications of DEA to real-world problems. We propose a new extended non-radial directional distance model, which is a variant of the weighted additive model, to cope with negative data. We then extend our model and use flexible measures, which play the role of both inputs and outputs, to cope with the unknown status of the performance measures. We also present a case study in the automotive industry to exhibit the efficacy of the models proposed in this study. (c) 2020 Elsevier Ltd. All rights reserved.
引用
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页数:14
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