Sensitivity Analysis of Efficiency Scores: How to Bootstrap in Nonparametric Frontier Models
Management Science
- 주제시뮬레이션 기법 · 의사결정분석
Efficiency scores of production units are generally measured relative to an estimated production frontier. Nonparametric estimators (DEA, FDH, ⋯) are based on a finite sample of observed production units. The bootstrap is one easy way to analyze the sensitivity of efficiency scores relative to the sampling variations of the estimated frontier. The main point in order to validate the bootstrap is to define a reasonable data-generating process in this complex framework and to propose a reasonable estimator of it. This paper provides a general methodology of bootstrapping in nonparametric frontier models. Some adapted methods are illustrated in analyzing the bootstrap sampling variations of input efficiency measures of electricity plants.
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- 저널Management Science · 44(1) · 49–61
- 토픽Efficiency Analysis Using DEA · Management Science and Operations Research
- DOI10.1287/mnsc.44.1.49
- 저자Léopold Simar, Paul W. Wilson