Description: Bayesian Data Analysis for the Behavioral and Neural Sciences Non-Calculus Fundamentals Bayesian analyses go beyond frequentist techniques of p-values and null hypothesis tests, providing a modern understanding of data analysis. Todd E. Hudson (Author) 9781108835565, Cambridge University Press Hardback, published 24 June 2021 2 pages 25.9 x 20.7 x 3.2 cm, 1.56 kg '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 textbook bypasses the need for advanced mathematics by providing in-text computer code, allowing students to explore Bayesian data analysis without the calculus background normally considered a prerequisite for this material. Now, students can use the best methods without needing advanced mathematical techniques. This approach goes beyond “frequentist” concepts of p-values and null hypothesis testing, using the full power of modern probability theory to solve real-world problems. The book offers a fully self-contained course, which demonstrates analysis techniques throughout with worked examples crafted specifically for students in the behavioral and neural sciences. The book presents two general algorithms that help students solve the measurement and model selection (also called “hypothesis testing”) problems most frequently encountered in real-world applications. 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. Subject Areas: Probability & statistics [PBT], Social research & statistics [JHBC], Research methods: general [GPS], Data analysis: general [GPH]
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BIC Subject Area 1: Probability & statistics [PBT]
BIC Subject Area 2: Social research & statistics [JHBC]
BIC Subject Area 3: Research methods: general [GPS]
BIC Subject Area 4: Data analysis: general [GPH]
Subject Area: Data Analysis, Social Research, Experimental Psychology
Item Height: 259 mm
Item Width: 207 mm
Author: Todd E. Hudson
Publication Name: Bayesian Data Analysis for the Behavioral and Neural Sciences: Non-Calculus Fundamentals
Format: Hardcover
Language: English
Publisher: Cambridge University Press
Subject: Classical Studies, Mathematics
Publication Year: 2021
Type: Textbook
Item Weight: 1560 g
Number of Pages: 2 Pages