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Title:

Joining forces of Bayesian and frequentist methodology: A study for inference in the presence of non-identiability

Author(s):
Raue, A.; Kreutz, C.; Theis, F. J.; Timmer, J.
Abstract:
Increasingly complex applications involve large datasets in combination with nonlinear and high dimensional mathematical models. In this context, statistical inference is a challenging issue that calls for pragmatic approaches that take advantage of both Bayesian and frequentist methods. The elegance of Bayesian methodology is founded in the propagation of information content provided by experimental data and prior assumptions to the posterior probability distribution of model predictions. Howev...     »
Keywords:
identi ability, pro le likelihood, Bayesian Markov chain Monte Carlo sampling, posterior propriety, propagation of uncertainty, prediction uncertainty
Journal title:
Philos. Transact. R. Soc. A - Math. Phys. Eng. Sci.
Year:
2013
Journal volume:
371
Journal issue:
1984
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