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Inferential Models

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Inferential Models Synopsis

A New Approach to Sound Statistical Reasoning

Inferential Models: Reasoning with Uncertainty introduces the authors' recently developed approach to inference: the inferential model (IM) framework. This logical framework for exact probabilistic inference does not require the user to input prior information. The authors show how an IM produces meaningful prior-free probabilistic inference at a high level.

The book covers the foundational motivations for this new IM approach, the basic theory behind its calibration properties, a number of important applications, and new directions for research. It discusses alternative, meaningful probabilistic interpretations of some common inferential summaries, such as p-values. It also constructs posterior probabilistic inferential summaries without a prior and Bayes' formula and offers insight on the interesting and challenging problems of conditional and marginal inference.

This book delves into statistical inference at a foundational level, addressing what the goals of statistical inference should be. It explores a new way of thinking compared to existing schools of thought on statistical inference and encourages you to think carefully about the correct approach to scientific inference.

About This Edition

ISBN: 9780367737801
Publication date:
Author: Ryan Martin, Chuanhai Liu
Publisher: Chapman & Hall/CRC an imprint of CRC Press
Format: Paperback
Pagination: 256 pages
Series: Chapman & Hall/CRC Monographs on Statistics & Applied Probability
Genres: Psychological methodology
Probability and statistics
Biology, life sciences

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