Learning Bayesian Statistics
A podcast by Alexandre Andorra - Miercuri
145 Episoade
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#22 Eliciting Priors and Doing Bayesian Inference at Scale, with Avi Bryant
Publicat: 26.08.2020 -
#21 Gaussian Processes, Bayesian Neural Nets & SIR Models, with Elizaveta Semenova
Publicat: 13.08.2020 -
#20 Regression and Other Stories, with Andrew Gelman, Jennifer Hill & Aki Vehtari
Publicat: 30.07.2020 -
#19 Turing, Julia and Bayes in Economics, with Cameron Pfiffer
Publicat: 03.07.2020 -
#SpecialAnnouncement: Patreon Launched!
Publicat: 26.06.2020 -
#18 How to ask good Research Questions and encourage Open Science, with Daniel Lakens
Publicat: 18.06.2020 -
#17 Reparametrize Your Models Automatically, with Maria Gorinova
Publicat: 04.06.2020 -
#16 Bayesian Statistics the Fun Way, with Will Kurt
Publicat: 21.05.2020 -
#15 The role of Python in Science and Education, with Michael Kennedy
Publicat: 06.05.2020 -
#14 Hidden Markov Models & Statistical Ecology, with Vianey Leos-Barajas
Publicat: 22.04.2020 -
#13 Building a Probabilistic Programming Framework in Julia, with Chad Scherrer
Publicat: 08.04.2020 -
#12 Biostatistics and Differential Equations, with Demetri Pananos
Publicat: 25.03.2020 -
#11 Taking care of your Hierarchical Models, with Thomas Wiecki
Publicat: 11.03.2020 -
#10 Exploratory Analysis of Bayesian Models, with ArviZ and Ari Hartikainen
Publicat: 26.02.2020 -
#9 Exploring the Cosmos with Bayes and Maggie Lieu
Publicat: 12.02.2020 -
#8 Bayesian Inference for Software Engineers, with Max Sklar
Publicat: 29.01.2020 -
#7 Designing a Probabilistic Programming Language & Debugging a Model, with Junpeng Lao
Publicat: 16.01.2020 -
#6 A principled Bayesian workflow, with Michael Betancourt
Publicat: 03.01.2020 -
#5 How to use Bayes in the biomedical industry, with Eric Ma
Publicat: 17.12.2019 -
#4 Dirichlet Processes and Neurodegenerative Diseases, with Karin Knudson
Publicat: 04.12.2019
Are you a researcher or data scientist / analyst / ninja? Do you want to learn Bayesian inference, stay up to date or simply want to understand what Bayesian inference is? Then this podcast is for you! You'll hear from researchers and practitioners of all fields about how they use Bayesian statistics, and how in turn YOU can apply these methods in your modeling workflow. When I started learning Bayesian methods, I really wished there were a podcast out there that could introduce me to the methods, the projects and the people who make all that possible. So I created "Learning Bayesian Statistics", where you'll get to hear how Bayesian statistics are used to detect black matter in outer space, forecast elections or understand how diseases spread and can ultimately be stopped. But this show is not only about successes -- it's also about failures, because that's how we learn best. So you'll often hear the guests talking about what *didn't* work in their projects, why, and how they overcame these challenges. Because, in the end, we're all lifelong learners! My name is Alex Andorra by the way, and I live in Estonia. By day, I'm a data scientist and modeler at the PyMC Labs consultancy. By night, I don't (yet) fight crime, but I'm an open-source enthusiast and core contributor to the python packages PyMC and ArviZ. I also love election forecasting and, most importantly, Nutella. But I don't like talking about it – I prefer eating it. So, whether you want to learn Bayesian statistics or hear about the latest libraries, books and applications, this podcast is for you -- just subscribe! You can also support the show and unlock exclusive Bayesian swag on Patreon!