Introduction to Nonparametric Estimation

Introduction to Nonparametric Estimation
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Artikel-Nr:
9781441927095
Veröffentl:
2010
Einband:
Paperback
Erscheinungsdatum:
29.11.2010
Seiten:
228
Autor:
Alexandre B. Tsybakov
Gewicht:
353 g
Format:
235x155x13 mm
Serie:
Springer Series in Statistics
Sprache:
Englisch
Beschreibung:

Methods of nonparametric estimation are located at the core of modern statistical science. The aim of this book is to give a short but mathematically self-contained introduction to the theory of nonparametric estimation. The emphasis is on the construction of optimal estimators; therefore the concepts of minimax optimality and adaptivity, as well as the oracle approach, occupy the central place in the book.

This is a concise text developed from lecture notes and ready to be used for a course on the graduate level. The main idea is to introduce the fundamental concepts of the theory while maintaining the exposition suitable for a first approach in the field. Therefore, the results are not always given in the most general form but rather under assumptions that lead to shorter or more elegant proofs.

The book has three chapters. Chapter 1 presents basic nonparametric regression and density estimators and analyzes their properties. Chapter 2 is devoted to a detailed treatment of minimax lower bounds. Chapter 3 develops more advanced topics: Pinsker's theorem, oracle inequalities, Stein shrinkage, and sharp minimax adaptivity.

Developed from lecture notes and ready to be used for a course on the graduate level, this concise text aims to introduce the fundamental concepts of nonparametric estimation theory while maintaining the exposition suitable for a first approach in the field.
This book will be a valuable reference for researchers in the eare of nonparametrics.
Nonparametric estimators.- Lower bounds on the minimax risk.- Asymptotic efficiency and adaptation.

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