Nonparametric regression is a form of regression analysis where the predictor does not take a predetermined form but is completely constructed using information...
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non-linear relation between a pair of random variables X and Y. In any nonparametric regression, the conditional expectation of a variable Y {\displaystyle Y}...
9 KB (1,261 words) - 07:54, 4 June 2024
method to estimate a probability distribution. Nonparametric regression and semiparametric regression methods have been developed based on kernels, splines...
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models (e.g., nonparametric regression). Regression analysis is primarily used for two conceptually distinct purposes. First, regression analysis is widely...
37 KB (5,235 words) - 03:23, 20 June 2025
In statistics and numerical analysis, isotonic regression or monotonic regression is the technique of fitting a free-form line to a sequence of observations...
10 KB (1,449 words) - 20:24, 19 June 2025
Linear equation Logistic regression M-estimator Multivariate adaptive regression spline Nonlinear regression Nonparametric regression Normal equations Projection...
76 KB (10,482 words) - 04:54, 7 July 2025
Local regression or local polynomial regression, also known as moving regression, is a generalization of the moving average and polynomial regression. Its...
34 KB (5,833 words) - 07:26, 12 July 2025
In statistics, polynomial regression is a form of regression analysis in which the relationship between the independent variable x and the dependent variable...
15 KB (2,406 words) - 23:39, 31 May 2025
In statistics, semiparametric regression includes regression models that combine parametric and nonparametric models. They are often used in situations...
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"multilevel regression" and "poststratification" ideas of MRP can be generalized. Multilevel regression can be replaced by nonparametric regression or regularized...
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adaptive regression splines (MARS) is a form of regression analysis introduced by Jerome H. Friedman in 1991. It is a non-parametric regression technique...
18 KB (2,701 words) - 04:09, 11 July 2025
data (e.g. using ordinary least squares). Nonparametric regression refers to techniques that allow the regression function to lie in a specified set of functions...
17 KB (1,935 words) - 07:44, 30 December 2024
Alternating conditional expectations (category Nonparametric regression)
statistics, Alternating Conditional Expectations (ACE) is a nonparametric algorithm used in regression analysis to find the optimal transformations for both...
7 KB (1,203 words) - 01:25, 27 April 2025
represents an improved technique in the neural networks based on the nonparametric regression. The idea is that every training sample will represent a mean to...
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Lasso (statistics) (redirect from Lasso regression)
Least absolute deviations Model selection Nonparametric regression Tikhonov regularization "What is lasso regression?". ibm.com. 18 January 2024. Retrieved...
52 KB (8,057 words) - 00:46, 6 July 2025
doi:10.1007/978-0-387-84858-7, [1] (eq.(5.16)) Fox, J. (2000). Nonparametric Simple Regression: Smoothing Scatterplots. Quantitative Applications in the Social...
30 KB (4,530 words) - 12:18, 18 June 2025
Additive model (category Nonparametric regression)
In statistics, an additive model (AM) is a nonparametric regression method. It was suggested by Jerome H. Friedman and Werner Stuetzle (1981) and is an...
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Kernel (statistics) (category Nonparametric statistics)
classification, regression analysis, and cluster analysis on data in an implicit space. This usage is particularly common in machine learning. In nonparametric statistics...
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quantile and nonparametric estimators have also been developed. These and other censored regression models are often confused with truncated regression models...
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Generalized additive model (category Nonparametric regression)
specified parametric form (for example a polynomial, or an un-penalized regression spline of a variable) or may be specified non-parametrically, or semi-parametrically...
39 KB (5,716 words) - 03:59, 9 May 2025
K-nearest neighbors algorithm (redirect from K-NN regression)
nearest neighbor. The k-NN algorithm can also be generalized for regression. In k-NN regression, also known as nearest neighbor smoothing, the output is the...
32 KB (4,333 words) - 23:48, 16 April 2025
Kriging (redirect from Gaussian process regression)
linear statistics Gaussian process Multivariate interpolation Nonparametric regression Radial basis function interpolation Space mapping Spatial dependence...
39 KB (6,063 words) - 23:47, 20 May 2025
Linear regression Simple linear regression Logistic regression Nonlinear regression Nonparametric regression Robust regression Stepwise regression Regression...
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from the conventional linear model. Developments towards fully nonparametric regression models for functional data encounter problems such as curse of...
48 KB (6,704 words) - 20:31, 18 July 2025
Passing–Bablok regression is a method from robust statistics for nonparametric regression analysis suitable for method comparison studies introduced by...
6 KB (759 words) - 18:51, 13 January 2024
Quantile regression is a type of regression analysis used in statistics and econometrics. Whereas the method of least squares estimates the conditional...
30 KB (4,259 words) - 22:29, 17 July 2025
Ridge regression (also known as Tikhonov regularization, named for Andrey Tikhonov) is a method of estimating the coefficients of multiple-regression models...
31 KB (4,148 words) - 18:20, 3 July 2025
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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for his work on data visualization, particularly on nonparametric regression and local regression. He is remembered as one of the developers of the S...
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Retrieved 30 December 2011. Wu, J., Chen, E. (May 2009). "A Novel Nonparametric Regression Ensemble for Rainfall Forecasting Using Particle Swarm Optimization...
168 KB (17,613 words) - 15:58, 16 July 2025