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Krahasoni metodat

Shqyrtoni metodat e zgjedhura krah për krah; rreshtat që ndryshojnë janë të theksuar.

Minitë e Shumëzimit të Pjesëshëm të Peshuar (NWLS)×Metoda më e vogël e katrorëve të përgjithësuar (GLS)×Diferencat më të Vogla të Peshuara (WLS)×
FushaEkonometriStatistikëStatistikë
FamiljaRegression modelRegression modelRegression model
Viti i origjinës1960s–1980s (formalized in applied econometrics)19351935
KrijuesiExtension of Gauss-Newton nonlinear least squares with Aitken-type weightingAlexander Craig AitkenAlexander Craig Aitken
LlojiNonlinear regression estimatorLinear estimatorWeighted linear estimator
Burimi themeluesGreene, W. H. (2018). Econometric Analysis (8th ed.). Pearson Education. ISBN: 978-0134461366Aitken, A. C. (1935). IV.—On least squares and linear combination of observations. Proceedings of the Royal Society of Edinburgh, 55, 42–48. DOI ↗Aitken, A. C. (1935). IV.—On least squares and linear combination of observations. Proceedings of the Royal Society of Edinburgh, 55, 42–48. DOI ↗
Emërtime të tjeraNWLS, nonlinear weighted least squares, weighted nonlinear regression, heteroscedasticity-corrected nonlinear regressionGLS, Aitken estimator, EGLS, feasible GLSWLS, weighted regression, heteroscedasticity-corrected OLS, variance-weighted least squares
Të lidhura333
PërmbledhjaNonlinear Weighted Least Squares combines the flexibility of nonlinear regression with the variance-stabilizing power of observation-level weights. It minimises a weighted sum of squared residuals around a user-specified nonlinear mean function, making it the method of choice when the relationship is inherently nonlinear and error variance differs across observations.Generalized Least Squares (GLS) is a linear regression estimator that extends ordinary least squares to handle situations where the error terms are correlated or have non-constant variance (heteroscedasticity). Introduced by Alexander Craig Aitken in 1935, GLS achieves the Best Linear Unbiased Estimator (BLUE) under a general error covariance structure by weighting observations according to their precision, providing a theoretical bridge between OLS and modern linear mixed models.Weighted Least Squares is a generalization of Ordinary Least Squares (OLS) regression that assigns each observation a weight inversely proportional to its error variance, thereby down-weighting high-variance data points and up-weighting precise ones. Introduced in its general matrix form by Alexander Craig Aitken in 1935, WLS is the canonical remedy when heteroscedasticity is present and the error variance structure is known or can be reliably estimated.
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ScholarGateKrahasoni metodat: Nonlinear WLS · Generalized Least Squares · Weighted Least Squares. Marrë më 2026-06-19 nga https://scholargate.app/sq/compare