Using a Bayes box to calculate the denominator @SpartacanUsuals
Using a Bayes box to calculate the denominator  @SpartacanUsuals
Uploaded May 2018 | Updated September 2026, 1 hour ago
Explains how to use a method known as a ‘Bayes box’ to calculate the denominator and, hence, the posterior for discrete (or discretized continuous) parameter models.

This video is part of a lecture course which closely follows the material covered in the book, "A Student's Guide to Bayesian Statistics", published by Sage, which is available to order on Amazon here: amazon.co.uk/Students-Guide-Bayesian-Statistics/dp/1473916364

For more information on all things Bayesian, have a look at: ben-lambert.com/bayesian/. The playlist for the lecture course is here: youtube.com/playlist?list=PLwJRxp3blEvZ8AKMXOy0fc0cqT61GsKCG&disable_polymer=true
Using a Bayes box to calculate the denominatorPropensity score theorem proof - part 1Estimating the error variance in matrix form - part 3Geometric Interpretation of Ordinary Least Squares: An IntroductionEconometric model building - general to specificRandom assignment - removes selection biasAn introduction to reference priorsRandom variables and probability distributions.Probit model as a result of a latent variable modelAn introduction to central limit theoremsEstimating the error variance in matrix form - part 4An introduction to inverse transform sampling
Ben Lambert |

Using a Bayes box to calculate the denominator

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