GeoThermalCloud: Machine Learning for Geothermal Resource Exploration
Maruti K. Mudunuru, Velimir V. Vesselinov, Bulbul Ahmmed

TL;DR
This paper introduces GeoThermalCloud, an open-source machine learning framework that enhances geothermal resource exploration by discovering hidden patterns and signatures in PFA data, improving detection of geothermal systems.
Contribution
The paper presents a novel ML-based methodology and open-source framework, GeoThermalCloud, integrating various ML techniques for improved geothermal exploration and data analysis.
Findings
Identification of hidden geothermal signatures
Enhanced detection of blind geothermal systems
Insights into resource types from US datasets
Abstract
This paper presents a novel ML-based methodology for geothermal exploration towards PFA applications. Our methodology is provided through our open-source ML framework, GeoThermalCloud \url{https://github.com/SmartTensors/GeoThermalCloud.jl}. The GeoThermalCloud uses a series of unsupervised, supervised, and physics-informed ML methods available in SmartTensors AI platform \url{https://github.com/SmartTensors}. Here, the presented analyses are performed using our unsupervised ML algorithm called NMF, which is available in the SmartTensors AI platform. Our ML algorithm facilitates the discovery of new phenomena, hidden patterns, and mechanisms that helps us to make informed decisions. Moreover, the GeoThermalCloud enhances the collected PFA data and discovers signatures representative of geothermal resources. Through GeoThermalCloud, we could identify hidden patterns in the geothermal…
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Taxonomy
TopicsGeochemistry and Geologic Mapping · Machine Learning in Materials Science · Hydrocarbon exploration and reservoir analysis
