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Kvantilregression (icke-parametriska varianter)×Vanligaste minsta kvadratmetoden (OLS) Regression×
ÄmnesområdeStatistikEkonometri
FamiljRegression modelRegression model
Ursprungsår19782019
UpphovspersonKoenker & BassettWooldridge (textbook treatment); classical least squares
TypQuantile regression (nonparametric variants)Linear regression
UrsprungskällaKoenker, R. & Bassett, G. (1978). Regression Quantiles. Econometrica, 46(1), 33-50. DOI ↗Wooldridge, J. M. (2019). Introductory Econometrics: A Modern Approach (7th ed.). Cengage Learning. ISBN: 978-1337558860
Aliasquantile regression, median regression, distribution-free quantile regression, Kantil Regresyon (Nonparametric Varyantlar)ordinary least squares, classical linear regression, linear regression, en küçük kareler regresyonu
Närliggande55
SammanfattningQuantile regression, introduced by Koenker and Bassett in 1978, models a chosen conditional quantile (such as the median or the 25th and 75th percentiles) of a continuous outcome rather than its mean. Its nonparametric variants fit these quantile relationships without assuming a distribution for the errors, making them a robust complement to mean-based regression on skewed data.Ordinary Least Squares is the classical linear regression method that explains a continuous outcome as a linear combination of predictors. It estimates the coefficients by minimising the sum of squared residuals, and under the Gauss-Markov assumptions these estimates are the best linear unbiased estimator (BLUE).
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ScholarGateJämför metoder: Nonparametric Quantile Regression · OLS Regression. Hämtad 2026-06-17 från https://scholargate.app/sv/compare