In robust statistics, robust regression seeks to overcome some limitations of traditional regression analysis. A regression analysis models the relationship...
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called regressors, predictors, covariates, explanatory variables or features). The most common form of regression analysis is linear regression, in which...
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regression; a model with two or more explanatory variables is a multiple linear regression. This term is distinct from multivariate linear regression...
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Local regression or local polynomial regression, also known as moving regression, is a generalization of the moving average and polynomial regression. Its...
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Robust Regression and Outlier Detection is a book on robust statistics, particularly focusing on the breakdown point of methods for robust regression...
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significant advance in their applicability. Robust confidence intervals Robust regression Unit-weighted regression Sarkar, Palash (2014-05-01). "On some connections...
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Theil–Sen estimator (redirect from Robust simple linear regression)
Theil–Sen estimator is a method for robustly fitting a line to sample points in the plane (a form of simple linear regression) by choosing the median of the...
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maximum likelihood estimates of a generalized linear model, and in robust regression to find an M-estimator, as a way of mitigating the influence of outliers...
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Look up regression, regressions, or régression in Wiktionary, the free dictionary. Regression or regressions may refer to: Regression (film), a 2015 horror...
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Least absolute deviations (redirect from Least-absolute-deviations regression)
Median absolute deviation Ordinary least squares Robust regression "Least Absolute Deviation Regression". The Concise Encyclopedia of Statistics. Springer...
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Huber loss (category Robust statistics)
In statistics, the Huber loss is a loss function used in robust regression, that is less sensitive to outliers in data than the squared error loss. A...
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Least trimmed squares (category Robust regression)
by the presence of outliers . It is one of a number of methods for robust regression. Instead of the standard least squares method, which minimises the...
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combination of one or more independent variables. In regression analysis, logistic regression (or logit regression) estimates the parameters of a logistic model...
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regression relative to ordinary least squares regression is that the quantile regression estimates are more robust against outliers in the response measurements...
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cross-entropy loss for logistic regression is the same as the gradient of the squared-error loss for linear regression. That is, define X T = ( 1 x 11...
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Ridge regression (also known as Tikhonov regularization, named for Andrey Tikhonov) is a method of estimating the coefficients of multiple-regression models...
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In robust statistics, repeated median regression, also known as the repeated median estimator, is a robust linear regression algorithm. The estimator...
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M-estimator (category Robust regression)
well-separated. Then M-estimation is consistent. Two-step M-estimator Robust statistics Robust regression Redescending M-estimator S-estimator Fréchet mean Hayashi...
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In statistics, polynomial regression is a form of regression analysis in which the relationship between the independent variable x and the dependent variable...
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In statistics, simple linear regression (SLR) is a linear regression model with a single explanatory variable. That is, it concerns two-dimensional sample...
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squares (PLS) regression is a statistical method that bears some relation to principal components regression and is a reduced rank regression; instead of...
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Ordinary least squares (redirect from Ordinary least squares regression)
especially in the case of a simple linear regression, in which there is a single regressor on the right side of the regression equation. The OLS estimator is consistent...
65 KB (9,098 words) - 10:14, 3 June 2025
but should have a different regression line (a robust regression would have been called for). The calculated regression is offset by the one outlier...
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In statistics and numerical analysis, isotonic regression or monotonic regression is the technique of fitting a free-form line to a sequence of observations...
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In statistics, multinomial logistic regression is a classification method that generalizes logistic regression to multiclass problems, i.e. with more than...
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S-estimator (category Robust regression)
{\theta }}))} . P. Rousseeuw and V. Yohai, Robust Regression by Means of S-estimators, from the book: Robust and nonlinear time series analysis, pages...
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Poisson regression is a generalized linear model form of regression analysis used to model count data and contingency tables. Poisson regression assumes...
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Heteroskedasticity-consistent standard errors (redirect from Robust standard error)
context of linear regression and time series analysis. These are also known as heteroskedasticity-robust standard errors (or simply robust standard errors)...
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Standardized covariance Standardized slope of the regression line Geometric mean of the two regression slopes Square root of the ratio of two variances...
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median regression, an algorithm for robust linear regression This disambiguation page lists articles associated with the title Median regression. If an...
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