Bayesian Neural Networks for Geothermal Resource Assessment: Prediction with Uncertainty
Stephen Brown, William L. Rodi, Marco Seracini, Chen Gu, Michael, Fehler, James Faulds, Connor M. Smith, and Sven Treitel

TL;DR
This paper applies Bayesian neural networks to predict geothermal resource potential across Nevada, incorporating uncertainty estimates to improve decision-making in resource exploration.
Contribution
It introduces the use of Bayesian neural networks for geothermal assessment, addressing model variability and uncertainty in predictions.
Findings
Bayesian neural networks provide meaningful uncertainty estimates.
The approach improves targeting of promising geothermal sites.
Model variability remains a challenge in predictions.
Abstract
We consider the application of machine learning to the evaluation of geothermal resource potential. A supervised learning problem is defined where maps of 10 geological and geophysical features within the state of Nevada, USA are used to define geothermal potential across a broad region. We have available a relatively small set of positive training sites (known resources or active power plants) and negative training sites (known drill sites with unsuitable geothermal conditions) and use these to constrain and optimize artificial neural networks for this classification task. The main objective is to predict the geothermal resource potential at unknown sites within a large geographic area where the defining features are known. These predictions could be used to target promising areas for further detailed investigations. We describe the evolution of our work from defining a specific neural…
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Taxonomy
TopicsReservoir Engineering and Simulation Methods · Hydrocarbon exploration and reservoir analysis · Hydraulic Fracturing and Reservoir Analysis
