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Measuring Statistical Evidence Using Relative Belief

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Measuring Statistical Evidence Using Relative Belief Synopsis

A Sound Basis for the Theory of Statistical Inference Measuring Statistical Evidence Using Relative Belief provides an overview of recent work on developing a theory of statistical inference based on measuring statistical evidence. It shows that being explicit about how to measure statistical evidence allows you to answer the basic question of when a statistical analysis is correct. The book attempts to establish a gold standard for how a statistical analysis should proceed.

It first introduces basic features of the overall approach, such as the roles of subjectivity, objectivity, infinity, and utility in statistical analyses. It next discusses the meaning of probability and the various positions taken on probability. The author then focuses on the definition of statistical evidence and how it should be measured.

He presents a method for measuring statistical evidence and develops a theory of inference based on this method. He also discusses how statisticians should choose the ingredients for a statistical problem and how these choices are to be checked for their relevance in an application.

About This Edition

ISBN: 9781032098562
Publication date:
Author: Michael Evans
Publisher: Chapman & Hall/CRC an imprint of Taylor & Francis Ltd
Format: Paperback
Pagination: 250 pages
Series: Chapman & Hall/CRC Monographs on Statistics and Applied Probability
Genres: Probability and statistics
Psychological methodology
Biology, life sciences

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