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رگرسیون حداقل مربعات هرس‌شده (LTS)×رگرسیون حداقل مربعات معمولی (OLS)×رگرسیون کوانتایل×
حوزهآماراقتصادسنجیاقتصادسنجی
خانوادهRegression modelRegression modelRegression model
سال پیدایش198420191978
پدیدآورPeter J. RousseeuwWooldridge (textbook treatment); classical least squaresKoenker & Bassett
نوعRobust linear regressionLinear regressionConditional quantile regression
منبع بنیادینRousseeuw, P. J. (1984). Least Median of Squares Regression. Journal of the American Statistical Association, 79(388), 871-880. DOI ↗Wooldridge, J. M. (2019). Introductory Econometrics: A Modern Approach (7th ed.). Cengage Learning. ISBN: 978-1337558860Koenker, R. & Bassett, G., Jr. (1978). Regression Quantiles. Econometrica, 46(1), 33-50. DOI ↗
نام‌های دیگرLTS, least trimmed squares regression, trimmed least squares, robust regressionordinary least squares, classical linear regression, linear regression, en küçük kareler regresyonuconditional quantile regression, regression quantiles, Kantil Regresyon
مرتبط555
خلاصهLeast Trimmed Squares is a robust linear regression method introduced by Peter J. Rousseeuw in 1984. Instead of fitting all residuals, it estimates the coefficients by minimising the sum of only the h smallest squared residuals, which gives it a breakdown point of up to 50% and reliable estimates on data heavily contaminated by outliers.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).Quantile regression models conditional quantiles of an outcome - the median, the 25th or 75th percentile, and so on - rather than the conditional mean that OLS targets. Introduced by Koenker and Bassett in 1978, it reveals how predictors act across the whole distribution, including its tails.
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ScholarGateمقایسهٔ روش‌ها: Least Trimmed Squares · OLS Regression · Quantile Regression. بازیابی‌شده در 2026-06-18 از https://scholargate.app/fa/compare