Bayesian Data Analysis for the Behavioral and Neural Sciences
Autor Todd E. Hudsonen Limba Engleză Paperback – 24 iun 2021
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Specificații
ISBN-13: 9781108812900
ISBN-10: 1108812902
Pagini: 612
Dimensiuni: 206 x 253 x 35 mm
Greutate: 1.44 kg
Editura: Cambridge University Press
Locul publicării:New York, United States
ISBN-10: 1108812902
Pagini: 612
Dimensiuni: 206 x 253 x 35 mm
Greutate: 1.44 kg
Editura: Cambridge University Press
Locul publicării:New York, United States
Cuprins
1. Logic and data analysis; 2. Mechanics of probability calculations; 3. Probability and information: from priors to posteriors; 4. Prediction and decision; 5. Models and measurements; 6. Model selection: Appendix A. Coding basics; Appendix B. Mathematics review: logarithmic and exponential function; Appendix C. The Bayesian toolbox: marginalization and coordinate transformations.
Recenzii
'Todd E. Hudson's book is very readable and nicely put together. It should be a useful addition to the growing Bayesian literature aimed at university students.' D. S. Sivia, College Lecturer, St Catherine's College, Oxford, UK
'This accessible, comprehensive textbook is a self-contained introduction to data analysis in the behavioral, neural, and biomedical sciences. Starting from logical first principles and requiring only minimal mathematical background, Hudson builds and explains the formal edifice of modern probability theory and data analysis. It is an impressive work.' Joachim Vandekerckhove, Associate Professor of Cognitive Sciences, University of California, Irvine, USA
'This accessible, comprehensive textbook is a self-contained introduction to data analysis in the behavioral, neural, and biomedical sciences. Starting from logical first principles and requiring only minimal mathematical background, Hudson builds and explains the formal edifice of modern probability theory and data analysis. It is an impressive work.' Joachim Vandekerckhove, Associate Professor of Cognitive Sciences, University of California, Irvine, USA
Descriere
Bayesian analyses go beyond frequentist techniques of p-values and null hypothesis tests, providing a modern understanding of data analysis.