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    Bayesian Hierarchical Compositional Models for Analysing Longitudinal Abundance Data from Microbiome Studies
    with I. Creus Martí and F. J. Santonja
    Complexity 2022 1-16. 2022.
    Gut microbiome plays a significant role in defining the health status of subjects, and recent studies highlight the importance of using time series strategies to analyse microbiome dynamics. In this paper, we develop a Bayesian model for microbiota longitudinal data, based on Dirichlet distribution with time-varying parameters, that take into account the compositional paradigm and consider principal balances. The proposed model can be effective for predicting the future dynamics of a microbial c…Read more