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A Distribution-Free Theory Of Nonparametric Regression 2002 Edition at Meripustak

A Distribution-Free Theory Of Nonparametric Regression 2002 Edition by Laszlo Gyoerfi Michael Köhler Adam Krzyzak Harro Walk , Springer

Books from same Author: Laszlo Gyoerfi Michael Köhler Adam Krzyzak Harro Walk

Books from same Publisher: Springer

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  • General Information  
    Author(s)Laszlo Gyoerfi Michael Köhler Adam Krzyzak Harro Walk
    PublisherSpringer
    ISBN9780387954417
    Pages650
    BindingHardback
    LanguageEnglish
    Publish YearAugust 2002

    Description

    Springer A Distribution-Free Theory Of Nonparametric Regression 2002 Edition by Laszlo Gyoerfi Michael Köhler Adam Krzyzak Harro Walk

    This book provides a systematic in-depth analysis of nonparametric regression with random design. It covers almost all known estimates. The emphasis is on distribution-free properties of the estimates. Table of contents : 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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