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Another #ChelseaExplains 🧵 (trying to start with simpler topics).

Today that's 💫Conjugate Priors💫
First, PRIORS. In Bayesian Statistics, we use probability distributions (like a normal, Cauchy, beta...) to represent uncertainty about the value of parameters.

Instead of choosing ONE number for a param, a distribution describes how likely a range of values are A distribution with the x-axis label "Possible Paramete
Bayesian Stats works by taking previously known, PRIOR information (this can be from prior data, domain expertise, regularization...) about the parameter

and combining it with data to make the POSTERIOR (the distribution of parameter values AFTER including data)
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