2024
DOI: 10.1093/gji/ggae334
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Variational prior replacement in Bayesian inference and inversion

Xuebin Zhao,
Andrew Curtis

Abstract: Summary Many scientific investigations require that the values of a set of model parameters are estimated using recorded data. In Bayesian inference, information from both observed data and prior knowledge is combined to update model parameters probabilistically by calculating the posterior probability distribution function. Prior information is often described by a prior probability distribution. Situations arise in which we wish to change prior information during the course of a scientific pro… Show more

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