Intro to Markov Chains and Bayesian Inference | Mackenzie Simper

Опубликовано: 18 Май 2026
на канале: WiDS Worldwide
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Markov chains are a special type of random process which can be used to model many natural processes. This workshop will be a gentle introduction to Markov chains, giving basic properties and many examples. The second part of the workshop will focus on one specific application of Markov chains to data science: Sampling from posterior distributions in Bayesian inference. Introductory background in probability, statistics, and linear algebra is assumed.

This workshop was conducted by Mackenzie Simper, PhD Student at Stanford University.

Slides for this workshop: https://bit.ly/markov_chains_ppt

Learn more about WiDS Workshops: widsconference.org/workshops

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