We propose a statistical emulator for a climate-economy deterministic integrated assessment model ensemble, based on a functional regression framework. Inference on the unknown parameters is carried out through a mixed effects hierarchical model using a fully Bayesian framework with a prior distribution on the vector of all parameters. We also suggest an autoregressive parameterization of the covariance matrix of the error, with matching marginal prior. In this way, we allow for a functional framework for the discretized output of the simulators that allows their time continuous evaluation.

Aiello, L., Fontana, M., Guglielmi, A. (2023). Bayesian functional emulation of CO2 emissions on future climate change scenarios. ENVIRONMETRICS, 34(8) [10.1002/env.2821].

Bayesian functional emulation of CO2 emissions on future climate change scenarios

Aiello L.
;
2023

Abstract

We propose a statistical emulator for a climate-economy deterministic integrated assessment model ensemble, based on a functional regression framework. Inference on the unknown parameters is carried out through a mixed effects hierarchical model using a fully Bayesian framework with a prior distribution on the vector of all parameters. We also suggest an autoregressive parameterization of the covariance matrix of the error, with matching marginal prior. In this way, we allow for a functional framework for the discretized output of the simulators that allows their time continuous evaluation.
Articolo in rivista - Articolo scientifico
Bayesian statistics; functional regression; hierarchical modeling; mixed effects model; uncertainty quantification;
English
20-lug-2023
2023
34
8
e2821
none
Aiello, L., Fontana, M., Guglielmi, A. (2023). Bayesian functional emulation of CO2 emissions on future climate change scenarios. ENVIRONMETRICS, 34(8) [10.1002/env.2821].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/516860
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