A First Course In Asymptotic Theory Of Statistics

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A First Course in Asymptotic Theory of Statistics

Author : T. K. Chandra
Publisher : Alpha Science International, Limited
Page : 256 pages
File Size : 49,8 Mb
Release : 1999-01-01
Category : Mathematics
ISBN : 817319260X

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A First Course in Asymptotic Theory of Statistics by T. K. Chandra Pdf

Starting with elementary notions of calculus, statistics and probability, the author introduces in this book the basic results of asymptotic theory through intuitive and motivated approaches with excellent exposure to various problems. Many theoretical and numerical examples have been worked out along with results that are not available in other books.

A Course in Large Sample Theory

Author : Thomas S. Ferguson
Publisher : Routledge
Page : 140 pages
File Size : 47,5 Mb
Release : 2017-09-06
Category : Mathematics
ISBN : 9781351470056

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A Course in Large Sample Theory by Thomas S. Ferguson Pdf

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.

Asymptotic Theory of Statistics and Probability

Author : Anirban DasGupta
Publisher : Springer Science & Business Media
Page : 727 pages
File Size : 46,5 Mb
Release : 2008-02-06
Category : Mathematics
ISBN : 9780387759715

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Asymptotic Theory of Statistics and Probability by Anirban DasGupta Pdf

This unique book delivers an encyclopedic treatment of classic as well as contemporary large sample theory, dealing with both statistical problems and probabilistic issues and tools. The book is unique in its detailed coverage of fundamental topics. It is written in an extremely lucid style, with an emphasis on the conceptual discussion of the importance of a problem and the impact and relevance of the theorems. 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.

A Course in Large Sample Theory

Author : Thomas S. Ferguson
Publisher : Routledge
Page : 256 pages
File Size : 44,9 Mb
Release : 2017-09-06
Category : Mathematics
ISBN : 9781351470063

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A Course in Large Sample Theory by Thomas S. Ferguson Pdf

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.

Asymptotics in Statistics

Author : Lucien Le Cam,Grace Lo Yang
Publisher : Springer Science & Business Media
Page : 299 pages
File Size : 52,6 Mb
Release : 2012-12-06
Category : Mathematics
ISBN : 9781461211662

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Asymptotics in Statistics by Lucien Le Cam,Grace Lo Yang Pdf

This is the second edition of a coherent introduction to the subject of asymptotic statistics as it has developed over the past 50 years. It differs from the first edition in that it is now more 'reader friendly' and also includes a new chapter on Gaussian and Poisson experiments, reflecting their growing role in the field. Most of the subsequent chapters have been entirely rewritten and the nonparametrics of Chapter 7 have been amplified. The volume is not intended to replace monographs on specialized subjects, but will help to place them in a coherent perspective. It thus represents a link between traditional material - such as maximum likelihood, and Wald's Theory of Statistical Decision Functions -- together with comparison and distances for experiments. Much of the material has been taught in a second year graduate course at Berkeley for 30 years.

Fundamentals of Probability: A First Course

Author : Anirban DasGupta
Publisher : Springer Science & Business Media
Page : 457 pages
File Size : 48,9 Mb
Release : 2010-04-02
Category : Mathematics
ISBN : 9781441957801

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Fundamentals of Probability: A First Course by Anirban DasGupta Pdf

Probability theory is one branch of mathematics that is simultaneously deep and immediately applicable in diverse areas of human endeavor. It is as fundamental as calculus. Calculus explains the external world, and probability theory helps predict a lot of it. In addition, problems in probability theory have an innate appeal, and the answers are often structured and strikingly beautiful. A solid background in probability theory and probability models will become increasingly more useful in the twenty-?rst century, as dif?cult new problems emerge, that will require more sophisticated models and analysis. Thisisa text onthe fundamentalsof thetheoryofprobabilityat anundergraduate or ?rst-year graduate level for students in science, engineering,and economics. The only mathematical background required is knowledge of univariate and multiva- ate calculus and basic linear algebra. The book covers all of the standard topics in basic probability, such as combinatorial probability, discrete and continuous distributions, moment generating functions, fundamental probability inequalities, the central limit theorem, and joint and conditional distributions of discrete and continuous random variables. But it also has some unique features and a forwa- looking feel.

A First Course in Order Statistics

Author : Barry C. Arnold,N. Balakrishnan,H. N. Nagaraja
Publisher : SIAM
Page : 291 pages
File Size : 45,7 Mb
Release : 2008-09-25
Category : Mathematics
ISBN : 9780898716481

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A First Course in Order Statistics by Barry C. Arnold,N. Balakrishnan,H. N. Nagaraja Pdf

This updated classic text will aid readers in understanding much of the current literature on order statistics: a flourishing field of study that is essential for any practising statistician and a vital part of the training for students in statistics. Written in a simple style that requires no advanced mathematical or statistical background, the book introduces the general theory of order statistics and their applications. The book covers topics such as distribution theory for order statistics from continuous and discrete populations, moment relations, bounds and approximations, order statistics in statistical inference and characterisation results, and basic asymptotic theory. There is also a short introduction to record values and related statistics. The authors have updated the text with suggestions for further reading that may be used for self-study. Written for advanced undergraduate and graduate students in statistics and mathematics, practising statisticians, engineers, climatologists, economists, and biologists.

Asymptotic Statistics

Author : A. W. van der Vaart
Publisher : Cambridge University Press
Page : 128 pages
File Size : 53,8 Mb
Release : 2000-06-19
Category : Mathematics
ISBN : 9781107268449

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Asymptotic Statistics by A. W. van der Vaart Pdf

This book is an introduction to the field of asymptotic statistics. The treatment is both practical and mathematically rigorous. In addition to most of the standard topics of an asymptotics course, including likelihood inference, M-estimation, the theory of asymptotic efficiency, U-statistics, and rank procedures, the book also presents recent research topics such as semiparametric models, the bootstrap, and empirical processes and their applications. The topics are organized from the central idea of approximation by limit experiments, which gives the book one of its unifying themes. This entails mainly the local approximation of the classical i.i.d. set up with smooth parameters by location experiments involving a single, normally distributed observation. Thus, even the standard subjects of asymptotic statistics are presented in a novel way. Suitable as a graduate or Master's level statistics text, this book will also give researchers an overview of research in asymptotic statistics.

A Course in the Large Sample Theory of Statistical Inference

Author : W. Jackson Hall,David Oakes
Publisher : CRC Press
Page : 321 pages
File Size : 46,7 Mb
Release : 2023-12-14
Category : Mathematics
ISBN : 9781498726085

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A Course in the Large Sample Theory of Statistical Inference by W. Jackson Hall,David Oakes Pdf

Provides accessible introduction to large sample theory with moving alternatives Elucidates mathematical concepts using simple practical examples Includes problem sets and solutions for each chapter Uses the moving alternative formulation developed by LeCam but requires a minimum of mathematical prerequisites

Asymptotic Methods in Statistical Decision Theory

Author : Lucien Le Cam
Publisher : Springer Science & Business Media
Page : 767 pages
File Size : 50,7 Mb
Release : 2012-12-06
Category : Mathematics
ISBN : 9781461249467

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Asymptotic Methods in Statistical Decision Theory by Lucien Le Cam Pdf

This book grew out of lectures delivered at the University of California, Berkeley, over many years. The subject is a part of asymptotics in statistics, organized around a few central ideas. The presentation proceeds from the general to the particular since this seemed the best way to emphasize the basic concepts. The reader is expected to have been exposed to statistical thinking and methodology, as expounded for instance in the book by H. Cramer [1946] or the more recent text by P. Bickel and K. Doksum [1977]. Another pos sibility, closer to the present in spirit, is Ferguson [1967]. Otherwise the reader is expected to possess some mathematical maturity, but not really a great deal of detailed mathematical knowledge. Very few mathematical objects are used; their assumed properties are simple; the results are almost always immediate consequences of the definitions. Some objects, such as vector lattices, may not have been included in the standard background of a student of statistics. For these we have provided a summary of relevant facts in the Appendix. The basic structures in the whole affair are systems that Blackwell called "experiments" and "transitions" between them. An "experiment" is a mathe matical abstraction intended to describe the basic features of an observational process if that process is contemplated in advance of its implementation. Typically, an experiment consists of a set E> of theories about what may happen in the observational process.

Elements of Large-Sample Theory

Author : E.L. Lehmann
Publisher : Springer Science & Business Media
Page : 640 pages
File Size : 52,5 Mb
Release : 2006-04-18
Category : Mathematics
ISBN : 9780387227290

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Elements of Large-Sample Theory by E.L. Lehmann Pdf

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.

Selected Works of Debabrata Basu

Author : Anirban DasGupta
Publisher : Springer Science & Business Media
Page : 416 pages
File Size : 49,5 Mb
Release : 2011-02-04
Category : Mathematics
ISBN : 9781441958259

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Selected Works of Debabrata Basu by Anirban DasGupta Pdf

This book contains a little more than 20 of Debabrata Basu's most significant articles and writings. Debabrata Basu is internationally known for his highly influential and fundamental contributions to the foundations of statistics, survey sampling, sufficiency, and invariance. The major theorem bearing his name has had numerous applications to statistics and probability. The articles in this volume are reprints of the original articles, in a chronological order. The book also contains eleven commentaries written by some of the most distinguished scholars in the area of foundations and statistical inference. These commentaries are by George Casella and V. Gopal, Phil Dawid, Tom DiCiccio and Alastair Young, Malay Ghosh, Jay kadane, Glen Meeden, Robert Serfling, Jayaram Sethuraman, Terry Speed, and Alan Welsh.

A Course in the Large Sample Theory of Statistical Inference

Author : William Jackson Hall,David Oakes (Statistician)
Publisher : Unknown
Page : 0 pages
File Size : 55,9 Mb
Release : 2023-12
Category : Statistical hypothesis testing
ISBN : 0429160089

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A Course in the Large Sample Theory of Statistical Inference by William Jackson Hall,David Oakes (Statistician) Pdf

"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. The book is based on lecture notes prepared by the first author, subsequently edited, expanded and updated by the second author. 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"--

Inference and Asymptotics

Author : D.R. Cox
Publisher : Routledge
Page : 360 pages
File Size : 52,9 Mb
Release : 2017-10-19
Category : Mathematics
ISBN : 9781351438568

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Inference and Asymptotics by D.R. Cox Pdf

Our book Asymptotic Techniquesfor Use in Statistics was originally planned as an account of asymptotic statistical theory, but by the time we had completed the mathematical preliminaries it seemed best to publish these separately. The present book, although largely self-contained, takes up the original theme and gives a systematic account of some recent developments in asymptotic parametric inference from a likelihood-based perspective. Chapters 1-4 are relatively elementary and provide first a review of key concepts such as likelihood, sufficiency, conditionality, ancillarity, exponential families and transformation models. Then first-order asymptotic theory is set out, followed by a discussion of the need for higher-order theory. This is then developed in some generality in Chapters 5-8. A final chapter deals briefly with some more specialized issues. The discussion emphasizes concepts and techniques rather than precise mathematical verifications with full attention to regularity conditions and, especially in the less technical chapters, draws quite heavily on illustrative examples. Each chapter ends with outline further results and exercises and with bibliographic notes. Many parts of the field discussed in this book are undergoing rapid further development, and in those parts the book therefore in some respects has more the flavour of a progress report than an exposition of a largely completed theory.

Probability for Statistics and Machine Learning

Author : Anirban DasGupta
Publisher : Springer Science & Business Media
Page : 796 pages
File Size : 43,8 Mb
Release : 2011-05-17
Category : Mathematics
ISBN : 9781441996343

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Probability for Statistics and Machine Learning by Anirban DasGupta Pdf

This book provides a versatile and lucid treatment of classic as well as modern probability theory, while integrating them with core topics in statistical theory and also some key tools in machine learning. It is written in an extremely accessible style, with elaborate motivating discussions and numerous worked out examples and exercises. The book has 20 chapters on a wide range of topics, 423 worked out examples, and 808 exercises. It is unique in its unification of probability and statistics, its coverage and its superb exercise sets, detailed bibliography, and in its substantive treatment of many topics of current importance. This book can be used as a text for a year long graduate course in statistics, computer science, or mathematics, for self-study, and as an invaluable research reference on probabiliity and its applications. Particularly worth mentioning are the treatments of distribution theory, asymptotics, simulation and Markov Chain Monte Carlo, Markov chains and martingales, Gaussian processes, VC theory, probability metrics, large deviations, bootstrap, the EM algorithm, confidence intervals, maximum likelihood and Bayes estimates, exponential families, kernels, and Hilbert spaces, and a self contained complete review of univariate probability.