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Mathematical Statistics

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For graduate-level courses in Statistical Inference or Theoretical Statistics in departments of Statistics, Bio-Statistics, Economics, Computer Science, and Mathematics. An updated printing! In response to feedback from faculty and students, some sections within the book have been rewritten. Also, a number of corrections have been made, further improving the accuracy of this outstanding textbook. This updated classic, time-honored introduction to the theory and practice of statistics modeling and inference reflects the changing focus of contemporary Statistics. Coverage begins with the more general nonparametric point of view and then looks at parametric models as submodels of the nonparametric ones which can be described smoothly by Euclidean parameters. Although some computational issues are discussed, this is very much a book on theory. It relates theory to conceptual and technical issues encountered in practice, viewing theory as suggestive for practice, not prescriptive. It shows readers how assumptions which lead to neat theory may be unrealistic in practice. KEY TOPICS: Statistical Models, Goals, and Performance Criteria. Methods of Estimation. Procedures in Simple Situations. Testing Statistical Hypotheses: Basic Theory. Asymptotic Approximations. Multiparameter Estimation, Testing and Confidence Regions. A Review of Basic Probability Theory. More Advanced Topics in Analysis and Probability. Matrix Algebra.

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Mathematical StatisticsBasic Ideas and Selected Topics 2nd ed Peter J Bickel - photo 1
Mathematical Statistics
Basic Ideas and Selected Topics
2nd ed.
Peter J. Bickel
University of California, Berkley, California, USA
Kjell A. Doksum
University of Wisconsin, Madison, Wisconsin, USA
9781498723824
Texts in Statistical Science
Volume I
CRC Press Taylor Francis Group 6000 Broken Sound Parkway NW Suite 300 Boca - photo 2
CRC Press
Taylor & Francis Group
6000 Broken Sound Parkway NW, Suite 300
Boca Raton, FL 33487-2742
2015 by Taylor & Francis Group, LLC
CRC Press is an imprint of Taylor & Francis Group, an Informa business
No claim to original U.S. Government works
Version Date: 20150115
International Standard Book Number-13: 978-1-4987-2382-4 (eBook - VitalBook)
This book contains information obtained from authentic and highly regarded sources. Reasonable efforts have been made to publish reliable data and information, but the author and publisher cannot assume responsibility for the validity of all materials or the consequences of their use. The authors and publishers have attempted to trace the copyright holders of all material reproduced in this publication and apologize to copyright holders if permission to publish in this form has not been obtained. If any copyright material has not been acknowledged please write and let us know so we may rectify in any future reprint.
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Front Matter
Chapter 1 STATISTICAL MODELS, GOALS, AND PERFORMANCE CRITERIA
Chapter 2 METHODS OF ESTIMATION
Chapter 3 MEASURES OF PERFORMANCE, NOTIONS OF OPTIMALITY, AND OPTIMAL PROCEDURES
Chapter 4 TESTING AND CONFIDENCE REGIONS: BASIC THEORY
Chapter 5 ASYMPTOTIC APPROXIMATIONS
Chapter 6 INFERENCE IN THE MULTIPARAMETER CASE
Back Matter
Front Matter
CHAPMAN & HALL/CRC
Texts in Statistical Science Series
Series Editors
Francesca Dominici, Harvard School of Public Health, USAJulian J. Faraway, University of Bath, UK
Martin Tanner, Northwestern University, USA
Jim Zidek, University of British Columbia, Canada
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