Data envelopment analysis;
Generalized linear mixed models;
Boosting;
Environmental variables;
Middle East and North African countries;
Banking efficiency;
MANAGERIAL EFFICIENCY;
FINANCIAL CRISIS;
BANK EFFICIENCY;
DETERMINANTS;
PERFORMANCE;
DEA;
CLASSIFICATION;
INEFFICIENCIES;
PRODUCTIVITY;
DOMINANCE;
D O I:
10.1007/s10479-016-2348-4
中图分类号:
C93 [管理学];
O22 [运筹学];
学科分类号:
070105 ;
12 ;
1201 ;
1202 ;
120202 ;
摘要:
Performance evaluation is an important part in the management of any decision-making unit (DMU) as it identifies sources of managerial inefficiencies and provides a policy for inefficient DMUs to improve their efficiency. The latter is generally affected by environmental variables that are beyond managerial control. Modeling the impact of these environmental variables is a critical issue for both researchers and practitioners. Researchers developed and proposed several methods to deal with this issue in general and in the data envelopment analysis (DEA) literature in particular. However, the available two-stage DEA methods do not account for interdependence between observations and they are of limited use when the number of variables is fairly large. This paper proposes an integrated framework combining DEA, and boosted generalized linear mixed models (GLMMs) that accounts for the interdependence problem when studying the impact of environmental variables on performance. Additionally, the framework carries out variable selection. The framework is illustrated with a sample of 151 commercial banks from Middle East and North African countries.
机构:
Natl Res Univ, Higher Sch Econ, Moscow, Russia
Russian Acad Sci, Trapeznikov Inst Control Sci, Moscow, RussiaNatl Res Univ, Higher Sch Econ, Moscow, Russia
Aleskerov, F. T.
Belousova, V. Yu.
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机构:
Natl Res Univ, Higher Sch Econ, Moscow, RussiaNatl Res Univ, Higher Sch Econ, Moscow, Russia
Belousova, V. Yu.
Petrushchenko, V. V.
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机构:
Natl Res Univ, Higher Sch Econ, Moscow, RussiaNatl Res Univ, Higher Sch Econ, Moscow, Russia