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Forecasting the spatiotemporal evolution of fluid-induced microearthquakes with deep learning

Jaehong Chung
Michael Manga
Timothy Kneafsey
Tapan Mukerji
Mengsu Hu
Main:14 Pages
12 Figures
Bibliography:5 Pages
4 Tables
Abstract

Microearthquakes (MEQs) generated by subsurface fluid injection record the evolving stress state and permeability of reservoirs. Forecasting their full spatiotemporal evolution is therefore critical for applications such as enhanced geothermal systems (EGS), CO2_2 sequestration and other geo-engineering applications. We present a transformer-based deep learning model that ingests hydraulic stimulation history and prior MEQ observations to forecast four key quantities: cumulative MEQ count, cumulative logarithmic seismic moment, and the 50th- and 95th-percentile extents (P50,P95P_{50}, P_{95}) of the MEQ cloud. Applied to the EGS Collab Experiment 1 dataset, the model achieves R2>0.98R^2 >0.98 for the 1-second forecast horizon and R2>0.88R^2 >0.88 for the 15-second forecast horizon across all targets, and supplies uncertainty estimates through a learned standard deviation term. These accurate, uncertainty-quantified forecasts enable real-time inference of fracture propagation and permeability evolution, demonstrating the strong potential of deep-learning approaches to improve seismic-risk assessment and guide mitigation strategies in future fluid-injection operations.

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@article{chung2025_2506.14923,
  title={ Forecasting the spatiotemporal evolution of fluid-induced microearthquakes with deep learning },
  author={ Jaehong Chung and Michael Manga and Timothy Kneafsey and Tapan Mukerji and Mengsu Hu },
  journal={arXiv preprint arXiv:2506.14923},
  year={ 2025 }
}
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