A Distribution-Free Theory of Nonparametric Regression - Softcover

Buch 121 von 160: Springer Series in Statistics
 
9781475777024: A Distribution-Free Theory of Nonparametric Regression

Inhaltsangabe

Why is Nonparametric Regression Important? * How to Construct Nonparametric Regression Estimates * Lower Bounds * Partitioning Estimates * Kernel Estimates * k-NN Estimates * Splitting the Sample * Cross Validation * Uniform Laws of Large Numbers * Least Squares Estimates I: Consistency * Least Squares Estimates II: Rate of Convergence * Least Squares Estimates III: Complexity Regularization * Consistency of Data-Dependent Partitioning Estimates * Univariate Least Squares Spline Estimates * Multivariate Least Squares Spline Estimates * Neural Networks Estimates * Radial Basis Function Networks * Orthogonal Series Estimates * Advanced Techniques from Empirical Process Theory * Penalized Least Squares Estimates I: Consistency * Penalized Least Squares Estimates II: Rate of Convergence * Dimension Reduction Techniques * Strong Consistency of Local Averaging Estimates * Semi-Recursive Estimates * Recursive Estimates * Censored Observations * Dependent Observations

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9780387954417: A Distribution-Free Theory of Nonparametric Regression (Springer Series in Statistics)

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ISBN 10:  0387954414 ISBN 13:  9780387954417
Verlag: Springer, 2002
Hardcover