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Data Envelopment Analysis (Productivity)×Sztochasztikus határanalízis (SFA)×
TudományterületKözgazdaságtanÖkonometria
MódszercsaládProcess / pipelineRegression model
Keletkezés éve19781977
MegalkotóCharnes, Cooper & Rhodes (building on Farrell 1957)Aigner, Lovell & Schmidt (1977); Battese & Coelli (1995) for panels
TípusNonparametric linear-programming efficiency frontierFrontier regression model
AlapműCharnes, A., Cooper, W. W., & Rhodes, E. (1978). Measuring the efficiency of decision making units. European Journal of Operational Research, 2(6), 429–444. DOI ↗Aigner, D., Lovell, C.A.K. & Schmidt, P. (1977). Formulation and Estimation of Stochastic Frontier Production Function Models. Journal of Econometrics, 6(1), 21–37. DOI ↗
Alternatív nevekDEA Efficiency Analysis, Nonparametric Frontier Efficiency, CCR/BCC Efficiency Measurement, Production Frontier DEASFA, stochastic frontier model, stochastic production frontier, Stokastik Sınır Analizi (SFA)
Kapcsolódó53
ÖsszefoglalóData envelopment analysis (DEA) is a nonparametric, linear-programming technique for measuring the relative productive efficiency of comparable units — firms, plants, hospitals, schools, bank branches — that convert multiple inputs into multiple outputs. Introduced by Charnes, Cooper, and Rhodes in 1978 and rooted in Farrell's 1957 work on efficiency measurement, it constructs a best-practice frontier that envelops the observed data and scores each unit by its distance to that frontier, requiring no assumed functional form for the production technology.Stochastic Frontier Analysis is a frontier regression model, introduced by Aigner, Lovell and Schmidt in 1977, that estimates a production, cost, or profit function while separating each unit's technical inefficiency from ordinary statistical noise. It splits the error term into a symmetric random component and a one-sided inefficiency component, producing firm- or country-level efficiency scores.
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ScholarGateMódszerek összehasonlítása: Data Envelopment Analysis (Productivity) · Stochastic Frontier Analysis. Letöltve 2026-06-24, forrás: https://scholargate.app/hu/compare