Exercises And Solutions In Statistical Theory

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Exercises and Solutions in Statistical Theory

Author : Lawrence L. Kupper,Brian. H Neelon,Sean M. O'Brien
Publisher : CRC Press
Page : 384 pages
File Size : 46,9 Mb
Release : 2013-06-24
Category : Mathematics
ISBN : 9781466572904

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Exercises and Solutions in Statistical Theory by Lawrence L. Kupper,Brian. H Neelon,Sean M. O'Brien Pdf

Exercises and Solutions in Statistical Theory helps students and scientists obtain an in-depth understanding of statistical theory by working on and reviewing solutions to interesting and challenging exercises of practical importance. Unlike similar books, this text incorporates many exercises that apply to real-world settings and provides much mor

Exercises and Solutions in Biostatistical Theory

Author : Lawrence Kupper,Brian Neelon,Sean M. O'Brien
Publisher : CRC Press
Page : 422 pages
File Size : 54,6 Mb
Release : 2010-11-09
Category : Mathematics
ISBN : 9781584887225

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Exercises and Solutions in Biostatistical Theory by Lawrence Kupper,Brian Neelon,Sean M. O'Brien Pdf

Drawn from nearly four decades of Lawrence L. Kupper’s teaching experiences as a distinguished professor in the Department of Biostatistics at the University of North Carolina, Exercises and Solutions in Biostatistical Theory presents theoretical statistical concepts, numerous exercises, and detailed solutions that span topics from basic probability to statistical inference. The text links theoretical biostatistical principles to real-world situations, including some of the authors’ own biostatistical work that has addressed complicated design and analysis issues in the health sciences. This classroom-tested material is arranged sequentially starting with a chapter on basic probability theory, followed by chapters on univariate distribution theory and multivariate distribution theory. The last two chapters on statistical inference cover estimation theory and hypothesis testing theory. Each chapter begins with an in-depth introduction that summarizes the biostatistical principles needed to help solve the exercises. Exercises range in level of difficulty from fairly basic to more challenging (identified with asterisks). By working through the exercises and detailed solutions in this book, students will develop a deep understanding of the principles of biostatistical theory. The text shows how the biostatistical theory is effectively used to address important biostatistical issues in a variety of real-world settings. Mastering the theoretical biostatistical principles described in the book will prepare students for successful study of higher-level statistical theory and will help them become better biostatisticians.

Mathematical Statistics

Author : Jun Shao
Publisher : Springer Science & Business Media
Page : 592 pages
File Size : 41,7 Mb
Release : 2008-02-03
Category : Mathematics
ISBN : 9780387217185

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Mathematical Statistics by Jun Shao Pdf

This graduate textbook covers topics in statistical theory essential for graduate students preparing for work on a Ph.D. degree in statistics. This new edition has been revised and updated and in this fourth printing, errors have been ironed out. The first chapter provides a quick overview of concepts and results in measure-theoretic probability theory that are useful in statistics. The second chapter introduces some fundamental concepts in statistical decision theory and inference. Subsequent chapters contain detailed studies on some important topics: unbiased estimation, parametric estimation, nonparametric estimation, hypothesis testing, and confidence sets. A large number of exercises in each chapter provide not only practice problems for students, but also many additional results.

Exercises and Solutions in Statistical Theory

Author : Lawrence L. Kupper,Brian. H Neelon,Sean M. O'Brien
Publisher : CRC Press
Page : 2318 pages
File Size : 45,7 Mb
Release : 2013-06-24
Category : Mathematics
ISBN : 9780415661959

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Exercises and Solutions in Statistical Theory by Lawrence L. Kupper,Brian. H Neelon,Sean M. O'Brien Pdf

Exercises and Solutions in Statistical Theory helps students and scientists obtain an in-depth understanding of statistical theory by working on and reviewing solutions to interesting and challenging exercises of practical importance. Unlike similar books, this text incorporates many exercises that apply to real-world settings and provides much more thorough solutions. The exercises and selected detailed solutions cover from basic probability theory through to the theory of statistical inference. Many of the exercises deal with important, real-life scenarios in areas such as medicine, epidemiology, actuarial science, social science, engineering, physics, chemistry, biology, environmental health, and sports. Several exercises illustrate the utility of study design strategies, sampling from finite populations, maximum likelihood, asymptotic theory, latent class analysis, conditional inference, regression analysis, generalized linear models, Bayesian analysis, and other statistical topics. The book also contains references to published books and articles that offer more information about the statistical concepts. Designed as a supplement for advanced undergraduate and graduate courses, this text is a valuable source of classroom examples, homework problems, and examination questions. It is also useful for scientists interested in enhancing or refreshing their theoretical statistical skills. The book improves readers’ comprehension of the principles of statistical theory and helps them see how the principles can be used in practice. By mastering the theoretical statistical strategies necessary to solve the exercises, readers will be prepared to successfully study even higher-level statistical theory.

Exercises in Theoretical Statistics

Author : Maurice George Kendall
Publisher : Unknown
Page : 200 pages
File Size : 48,5 Mb
Release : 1968
Category : Estadística matemática
ISBN : UOM:39015015725321

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Exercises in Theoretical Statistics by Maurice George Kendall Pdf

Exercises; Distribution theory; Sampling; Statistical relationship; Estimation and inference; Time-series.

Theoretical Statistics

Author : Robert W. Keener
Publisher : Springer Science & Business Media
Page : 538 pages
File Size : 52,6 Mb
Release : 2010-09-08
Category : Mathematics
ISBN : 9780387938394

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Theoretical Statistics by Robert W. Keener Pdf

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.

Introduction to Statistics and Data Analysis

Author : Christian Heumann,Michael Schomaker,Shalabh
Publisher : Springer Nature
Page : 584 pages
File Size : 46,6 Mb
Release : 2023-01-30
Category : Mathematics
ISBN : 9783031118333

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Introduction to Statistics and Data Analysis by Christian Heumann,Michael Schomaker,Shalabh Pdf

Now in its second edition, this introductory statistics textbook conveys the essential concepts and tools needed to develop and nurture statistical thinking. It presents descriptive, inductive and explorative statistical methods and guides the reader through the process of quantitative data analysis. This revised and extended edition features new chapters on logistic regression, simple random sampling, including bootstrapping, and causal inference. The text is primarily intended for undergraduate students in disciplines such as business administration, the social sciences, medicine, politics, and macroeconomics. It features a wealth of examples, exercises and solutions with computer code in the statistical programming language R, as well as supplementary material that will enable the reader to quickly adapt the methods to their own applications.

Mathematical Statistics

Author : Wiebe R. Pestman,Ivo B. Alberink
Publisher : Walter de Gruyter
Page : 336 pages
File Size : 47,8 Mb
Release : 2012-10-25
Category : Mathematics
ISBN : 9783110809343

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Mathematical Statistics by Wiebe R. Pestman,Ivo B. Alberink Pdf

Examples and Problems in Mathematical Statistics

Author : Shelemyahu Zacks
Publisher : John Wiley & Sons
Page : 499 pages
File Size : 51,7 Mb
Release : 2013-12-17
Category : Mathematics
ISBN : 9781118605837

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Examples and Problems in Mathematical Statistics by Shelemyahu Zacks Pdf

Provides the necessary skills to solve problems in mathematical statistics through theory, concrete examples, and exercises With a clear and detailed approach to the fundamentals of statistical theory, Examples and Problems in Mathematical Statistics uniquely bridges the gap between theory andapplication and presents numerous problem-solving examples that illustrate the relatednotations and proven results. Written by an established authority in probability and mathematical statistics, each chapter begins with a theoretical presentation to introduce both the topic and the important results in an effort to aid in overall comprehension. Examples are then provided, followed by problems, and finally, solutions to some of the earlier problems. In addition, Examples and Problems in Mathematical Statistics features: Over 160 practical and interesting real-world examples from a variety of fields including engineering, mathematics, and statistics to help readers become proficient in theoretical problem solving More than 430 unique exercises with select solutions Key statistical inference topics, such as probability theory, statistical distributions, sufficient statistics, information in samples, testing statistical hypotheses, statistical estimation, confidence and tolerance intervals, large sample theory, and Bayesian analysis Recommended for graduate-level courses in probability and statistical inference, Examples and Problems in Mathematical Statistics is also an ideal reference for applied statisticians and researchers.

Introductory Statistics for Business and Economics

Author : Jan Ubøe
Publisher : Springer
Page : 466 pages
File Size : 50,6 Mb
Release : 2017-12-30
Category : Business & Economics
ISBN : 9783319709369

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Introductory Statistics for Business and Economics by Jan Ubøe Pdf

This textbook discusses central statistical concepts and their use in business and economics. To endure the hardship of abstract statistical thinking, business and economics students need to see interesting applications at an early stage. Accordingly, the book predominantly focuses on exercises, several of which draw on simple applications of non-linear theory. The main body presents central ideas in a simple, straightforward manner; the exposition is concise, without sacrificing rigor. The book bridges the gap between theory and applications, with most exercises formulated in an economic context. Its simplicity of style makes the book suitable for students at any level, and every chapter starts out with simple problems. Several exercises, however, are more challenging, as they are devoted to the discussion of non-trivial economic problems where statistics plays a central part.

A Course in Large Sample Theory

Author : Thomas S. Ferguson
Publisher : Routledge
Page : 140 pages
File Size : 45,9 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.

Multivariate Statistics:

Author : Wolfgang Härdle,Zdeněk Hlávka
Publisher : Springer Science & Business Media
Page : 367 pages
File Size : 49,5 Mb
Release : 2007-07-27
Category : Computers
ISBN : 9780387707846

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Multivariate Statistics: by Wolfgang Härdle,Zdeněk Hlávka Pdf

The authors have cleverly used exercises and their solutions to explore the concepts of multivariate data analysis. Broken down into three sections, this book has been structured to allow students in economics and finance to work their way through a well formulated exploration of this core topic. The first part of this book is devoted to graphical techniques. The second deals with multivariate random variables and presents the derivation of estimators and tests for various practical situations. The final section contains a wide variety of exercises in applied multivariate data analysis.

Mathematical Statistics: Exercises and Solutions

Author : Jun Shao
Publisher : Springer Science & Business Media
Page : 385 pages
File Size : 40,9 Mb
Release : 2006-06-26
Category : Mathematics
ISBN : 9780387282763

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Mathematical Statistics: Exercises and Solutions by Jun Shao Pdf

The exercises are grouped into seven chapters with titles matching those in the author's Mathematical Statistics. Can also be used as a stand-alone because exercises and solutions are comprehensible independently of their source, and notation and terminology are explained in the front of the book. Suitable for self-study for a statistics Ph.D. qualifying exam.

Statistics: Problems And Solution (Second Edition)

Author : Eryl E Bassett,J Mike Bremner,Byron Jones,Byron J T Morgan,P M North,Ian T Jolliffe
Publisher : World Scientific
Page : 241 pages
File Size : 42,7 Mb
Release : 2000-06-27
Category : Mathematics
ISBN : 9789814493161

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Statistics: Problems And Solution (Second Edition) by Eryl E Bassett,J Mike Bremner,Byron Jones,Byron J T Morgan,P M North,Ian T Jolliffe Pdf

Originally published in 1986, this book consists of 100 problems in probability and statistics, together with solutions and, most importantly, extensive notes on the solutions. The level of sophistication of the problems is similar to that encountered in many introductory courses in probability and statistics. At this level, straightforward solutions to the problems are of limited value unless they contain informed discussion of the choice of technique used, and possible alternatives. The solutions in the book are therefore elaborated with extensive notes which add value to the solutions themselves. The notes enable the reader to discover relationships between various statistical techniques, and provide the confidence needed to tackle new problems.

All of Statistics

Author : Larry Wasserman
Publisher : Springer Science & Business Media
Page : 446 pages
File Size : 44,5 Mb
Release : 2013-12-11
Category : Mathematics
ISBN : 9780387217369

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All of Statistics by Larry Wasserman Pdf

Taken literally, the title "All of Statistics" is an exaggeration. But in spirit, the title is apt, as the book does cover a much broader range of topics than a typical introductory book on mathematical statistics. This book is for people who want to learn probability and statistics quickly. It is suitable for graduate or advanced undergraduate students in computer science, mathematics, statistics, and related disciplines. The book includes modern topics like non-parametric curve estimation, bootstrapping, and classification, topics that are usually relegated to follow-up courses. The reader is presumed to know calculus and a little linear algebra. No previous knowledge of probability and statistics is required. Statistics, data mining, and machine learning are all concerned with collecting and analysing data.