A Course In Large Sample Theory
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A Course in Large Sample Theory
Author | : Thomas S. Ferguson |
Publsiher | : Routledge |
Total Pages | : 140 |
Release | : 2017-09-06 |
Genre | : Mathematics |
ISBN | : 9781351470056 |
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A Course in Large Sample Theory is presented in four parts. The first treats basic probabilistic notions, the second features the basic statistical tools for expanding the theory, the third contains special topics as applications of the general theory, and the fourth covers more standard statistical topics. Nearly all topics are covered in their multivariate setting.The book is intended as a first year graduate course in large sample theory for statisticians. It has been used by graduate students in statistics, biostatistics, mathematics, and related fields. Throughout the book there are many examples and exercises with solutions. It is an ideal text for self study.
A Course in Large Sample Theory
Author | : Thomas S. Ferguson |
Publsiher | : Routledge |
Total Pages | : 256 |
Release | : 2017-09-06 |
Genre | : Mathematics |
ISBN | : 9781351470063 |
Download A Course in Large Sample Theory Book in PDF, Epub and Kindle
A Course in Large Sample Theory is presented in four parts. The first treats basic probabilistic notions, the second features the basic statistical tools for expanding the theory, the third contains special topics as applications of the general theory, and the fourth covers more standard statistical topics. Nearly all topics are covered in their multivariate setting.The book is intended as a first year graduate course in large sample theory for statisticians. It has been used by graduate students in statistics, biostatistics, mathematics, and related fields. Throughout the book there are many examples and exercises with solutions. It is an ideal text for self study.
Elements of Large Sample Theory
Author | : E.L. Lehmann |
Publsiher | : Springer Science & Business Media |
Total Pages | : 640 |
Release | : 2006-04-18 |
Genre | : Mathematics |
ISBN | : 9780387227290 |
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Written by one of the main figures in twentieth century statistics, this book provides a unified treatment of first-order large-sample theory. It discusses a broad range of applications including introductions to density estimation, the bootstrap, and the asymptotics of survey methodology. The book is written at an elementary level making it accessible to most readers.
A Course in Mathematical Statistics and Large Sample Theory
Author | : Rabi Bhattacharya,Lizhen Lin,Victor Patrangenaru |
Publsiher | : Springer |
Total Pages | : 389 |
Release | : 2016-08-13 |
Genre | : Mathematics |
ISBN | : 9781493940325 |
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This graduate-level textbook is primarily aimed at graduate students of statistics, mathematics, science, and engineering who have had an undergraduate course in statistics, an upper division course in analysis, and some acquaintance with measure theoretic probability. It provides a rigorous presentation of the core of mathematical statistics. Part I of this book constitutes a one-semester course on basic parametric mathematical statistics. Part II deals with the large sample theory of statistics - parametric and nonparametric, and its contents may be covered in one semester as well. Part III provides brief accounts of a number of topics of current interest for practitioners and other disciplines whose work involves statistical methods.
A Course in Large Sample Theory
Author | : Taylor & Francis Group |
Publsiher | : Unknown |
Total Pages | : 135 |
Release | : 2017-03-07 |
Genre | : Electronic Book |
ISBN | : 1138061107 |
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Theoretical Statistics
Author | : Robert W. Keener |
Publsiher | : Springer Science & Business Media |
Total Pages | : 543 |
Release | : 2010-09-08 |
Genre | : Mathematics |
ISBN | : 9780387938394 |
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Intended as the text for a sequence of advanced courses, this book covers major topics in theoretical statistics in a concise and rigorous fashion. The discussion assumes a background in advanced calculus, linear algebra, probability, and some analysis and topology. Measure theory is used, but the notation and basic results needed are presented in an initial chapter on probability, so prior knowledge of these topics is not essential. The presentation is designed to expose students to as many of the central ideas and topics in the discipline as possible, balancing various approaches to inference as well as exact, numerical, and large sample methods. Moving beyond more standard material, the book includes chapters introducing bootstrap methods, nonparametric regression, equivariant estimation, empirical Bayes, and sequential design and analysis. The book has a rich collection of exercises. Several of them illustrate how the theory developed in the book may be used in various applications. Solutions to many of the exercises are included in an appendix.
Theory of Statistics
Author | : Mark J. Schervish |
Publsiher | : Springer Science & Business Media |
Total Pages | : 732 |
Release | : 2012-12-06 |
Genre | : Mathematics |
ISBN | : 9781461242505 |
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The aim of this graduate textbook is to provide a comprehensive advanced course in the theory of statistics covering those topics in estimation, testing, and large sample theory which a graduate student might typically need to learn as preparation for work on a Ph.D. An important strength of this book is that it provides a mathematically rigorous and even-handed account of both Classical and Bayesian inference in order to give readers a broad perspective. For example, the "uniformly most powerful" approach to testing is contrasted with available decision-theoretic approaches.
A Course in the Large Sample Theory of Statistical Inference
Author | : W. Jackson Hall,David Oakes |
Publsiher | : CRC Press |
Total Pages | : 330 |
Release | : 2023-12-14 |
Genre | : Mathematics |
ISBN | : 9781498726115 |
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This book provides an accessible but rigorous introduction to asymptotic theory in parametric statistical models. Asymptotic results for estimation and testing are derived using the “moving alternative” formulation due to R. A. Fisher and L. Le Cam. Later chapters include discussions of linear rank statistics and of chi-squared tests for contingency table analysis, including situations where parameters are estimated from the complete ungrouped data. This book is based on lecture notes prepared by the first author, subsequently edited, expanded and updated by the second author. Key features: • Succinct account of the concept of “asymptotic linearity” and its uses • Simplified derivations of the major results, under an assumption of joint asymptotic normality • Inclusion of numerical illustrations, practical examples and advice • Highlighting some unexpected consequences of the theory • Large number of exercises, many with hints to solutions Some facility with linear algebra and with real analysis including ‘epsilon-delta’ arguments is required. Concepts and results from measure theory are explained when used. Familiarity with undergraduate probability and statistics including basic concepts of estimation and hypothesis testing is necessary, and experience with applying these concepts to data analysis would be very helpful.