BART-SIMP: a novel framework for flexible spatial covariate modeling and prediction using Bayesian additive regression trees
Jiang, Alex Ziyu, Wakefield, Jon
Prediction is a classic challenge in spatial statistics and the inclusion of spatial covariates can greatly improve predictive performance when incorporated into a model with latent spatial effects. It is desirable to develop flexible regression models that allow for nonlinearities and interactions in the covariate structure. Machine learning models have been suggested in the spatial context, allowing for spatial dependence in the residuals, but fail to provide reliable uncertainty estimates. In this paper, we investigate a novel combination of a Gaussian process spatial model and a Bayesian Additive Regression Tree (BART) model. The computational burden of the approach is reduced by combining Markov chain Monte Carlo (MCMC) with the Integrated Nested Laplace Approximation (INLA) technique. We study the performance of the method via simulations and use the model to predict anthropometric responses, collected via household cluster samples in Kenya.
Sep-23-2023
- Country:
- North America > United States (0.28)
- Africa
- Rwanda (0.04)
- Ethiopia (0.04)
- Kenya
- Nairobi City County > Nairobi (0.04)
- Kiambu County > Kiambu (0.04)
- Mombasa County > Mombasa (0.04)
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- Siaya County > Siaya (0.04)
- Kilifi County > Kilifi (0.04)
- Nyamira County > Nyamira (0.04)
- Wajir County > Wajir (0.04)
- Kisumu County > Kisumu (0.04)
- Garissa County > Garissa (0.04)
- Lamu County > Lamu (0.04)
- Machakos County > Machakos (0.04)
- Nyeri County > Nyeri (0.04)
- Kitui County > Kitui (0.04)
- Bomet County > Bomet (0.04)
- Mandera County > Mandera (0.04)
- Homa Bay County > Homa Bay (0.04)
- Genre:
- Research Report
- New Finding (0.46)
- Experimental Study (0.46)
- Research Report
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- Health & Medicine > Therapeutic Area (1.00)
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