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9780262044585

Bayesian Statistics for Experimental Scientists A General Introduction Using Distribution-Free Methods

by
  • ISBN13:

    9780262044585

  • ISBN10:

    0262044587

  • Format: Hardcover
  • Copyright: 2020-09-08
  • Publisher: The MIT Press

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Summary

An introduction to the Bayesian approach to statistical inference that demonstrates its superiority to orthodox frequentist statistical analysis.

This book offers an introduction to the Bayesian approach to statistical inference, with a focus on nonparametric and distribution-free methods. It covers not only well-developed methods for doing Bayesian statistics but also novel tools that enable Bayesian statistical analyses for cases that previously did not have a full Bayesian solution. The book's premise is that there are fundamental problems with orthodox frequentist statistical analyses that distort the scientific process. Side-by-side comparisons of Bayesian and frequentist methods illustrate the mismatch between the needs of experimental scientists in making inferences from data and the properties of the standard tools of classical statistics.

The book first covers elementary probability theory, the binomial model, the multinomial model, and methods for comparing different experimental conditions or groups. It then turns its focus to distribution-free statistics that are based on having ranked data, examining data from experimental studies and rank-based correlative methods. Each chapter includes exercises that help readers achieve a more complete understanding of the material.

The book devotes considerable attention not only to the linkage of statistics to practices in experimental science but also to the theoretical foundations of statistics. Frequentist statistical practices often violate their own theoretical premises. The beauty of Bayesian statistics, readers will learn, is that it is an internally coherent system of scientific inference that can be proved from probability theory.

Author Biography

Richard A. Chechile is Professor of Psychology and Cognitive and Brain Scientist at Tufts University. He is the author of Analyzing Memory: The Formation, Retention, and Measurement of Memory (MIT Press).

Table of Contents

I Introduction to Bayesian Analysis for Categorical Data
1 Probability and Inference
2 Binomial Model
3 Multinomial Data
4 Condition Effects: Categorical Data
II Bayesian Analysis of Ordinal Information
5 Median- and Sign-Based Methods
6 Wilcoxon Signed-Rank Procedure
7 Mann-Whitney Procedure
8 Distribution-Free Correlation
References
Index

Supplemental Materials

What is included with this book?

The New copy of this book will include any supplemental materials advertised. Please check the title of the book to determine if it should include any access cards, study guides, lab manuals, CDs, etc.

The Used, Rental and eBook copies of this book are not guaranteed to include any supplemental materials. Typically, only the book itself is included. This is true even if the title states it includes any access cards, study guides, lab manuals, CDs, etc.

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