Asymptotic Theory of Statistics and Probability

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Details

This unique book delivers an encyclopedic treatment of classic as well as contemporary large sample theory. It deals with both statistical problems and probabilistic issues and tools. The book's detailed coverage is written in an extremely lucid style.


This unique book provides unmatched coverage of topics of interest to a very broad spectrum of statisticians and also probabilists. The book can be used in multiple roles. It can be used as a graduate text with a huge choice of topics for the instructor, as an invaluable general purpose reference, for independent reading by students and researchers, and for getting an overview of the latest developments in some of the most contemporary topics, such as false discovery, treatment of dependent data, and the bootstrap. There is no other book in large sample theory that matches this book in coverage, exercises and examples, bibliography, and lucid conceptual discussion of issues and theorems.


Encyclopedic coverage of classical topics and at the same time of some of the most modern topics Versatile research reference to anyone working on theoretical statistics and probability Emphasis on presenting the material in a lucid and accessible style, suitable for conceptual understanding of a very broad range of topics Includes supplementary material: sn.pub/extras

Inhalt
Basic Convergence Concepts and Theorems.- Metrics, Information Theory, Convergence, and Poisson Approximations.- More General Weak and Strong Laws and the Delta Theorem.- Transformations.- More General Central Limit Theorems.- Moment Convergence and Uniform Integrability.- Sample Percentiles and Order Statistics.- Sample Extremes.- Central Limit Theorems for Dependent Sequences.- Central Limit Theorem for Markov Chains.- Accuracy of Central Limit Theorems.- Invariance Principles.- Edgeworth Expansions and Cumulants.- Saddlepoint Approximations.- U-statistics.- Maximum Likelihood Estimates.- M Estimates.- The Trimmed Mean.- Multivariate Location Parameter and Multivariate Medians.- Bayes Procedures and Posterior Distributions.- Testing Problems.- Asymptotic Efficiency in Testing.- Some General Large-Deviation Results.- Classical Nonparametrics.- Two-Sample Problems.- Goodness of Fit.- Chi-square Tests for Goodness of Fit.- Goodness of Fit with Estimated Parameters.- The Bootstrap.- Jackknife.- Permutation Tests.- Density Estimation.- Mixture Models and Nonparametric Deconvolution.- High-Dimensional Inference and False Discovery.- A Collection of Inequalities in Probability, Linear Algebra, and Analysis.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09781461498841
    • Sprache Englisch
    • Auflage 2008
    • Größe H235mm x B155mm x T41mm
    • Jahr 2014
    • EAN 9781461498841
    • Format Kartonierter Einband
    • ISBN 1461498848
    • Veröffentlichung 22.10.2014
    • Titel Asymptotic Theory of Statistics and Probability
    • Autor Anirban Dasgupta
    • Untertitel Springer Texts in Statistics
    • Gewicht 1124g
    • Herausgeber Springer New York
    • Anzahl Seiten 756
    • Lesemotiv Verstehen
    • Genre Mathematik

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