Confidence, Likelihood, Probability
eBook - PDF

Confidence, Likelihood, Probability

Statistical Inference with Confidence Distributions

  1. English
  2. PDF
  3. Available on iOS & Android
eBook - PDF

Confidence, Likelihood, Probability

Statistical Inference with Confidence Distributions

About this book

This lively book lays out a methodology of confidence distributions and puts them through their paces. Among other merits, they lead to optimal combinations of confidence from different sources of information, and they can make complex models amenable to objective and indeed prior-free analysis for less subjectively inclined statisticians. The generous mixture of theory, illustrations, applications and exercises is suitable for statisticians at all levels of experience, as well as for data-oriented scientists. Some confidence distributions are less dispersed than their competitors. This concept leads to a theory of risk functions and comparisons for distributions of confidence. Neyman–Pearson type theorems leading to optimal confidence are developed and richly illustrated. Exact and optimal confidence distribution is the gold standard for inferred epistemic distributions. Confidence distributions and likelihood functions are intertwined, allowing prior distributions to be made part of the likelihood. Meta-analysis in likelihood terms is developed and taken beyond traditional methods, suiting it in particular to combining information across diverse data sources.

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Yes, you can access Confidence, Likelihood, Probability by Tore Schweder,Nils Lid Hjort in PDF and/or ePUB format, as well as other popular books in Mathematics & Probability & Statistics. We have over one million books available in our catalogue for you to explore.

Table of contents

  1. Cover
  2. Half-title page
  3. Series information
  4. Title page
  5. Copyright information
  6. Dedication
  7. Table of contents
  8. Preface
  9. 1 Confidence, likelihood, probability: An invitation
  10. 2 Inference in parametric models
  11. 3 Confidence distributions
  12. 4 Further developments for confidence distribution
  13. 5 Invariance, sufficiency and optimality for confidence distributions
  14. 6 The fiducial argument
  15. 7 Improved approximations for confidence distributions
  16. 8 Exponential families and generalised linear models
  17. 9 Confidence distributions in higher dimensions
  18. 10 Likelihoods and confidence likelihoods
  19. 11 Confidence in non- and semiparametric models
  20. 12 Predictions and confidence
  21. 13 Meta-analysis and combination of information
  22. 14 Applications
  23. 15 Finale: Summary, and a look into the future
  24. Overview of examples and data
  25. Appendix: Large-sample theory with applications
  26. References
  27. Name Index
  28. Subject Index