Asia-Pacific Offshore Exploration Symposium (APEX)
Machine Learning Lithofacies Prediction Using Self-Organizing Maps: Integrated Workflow for Complex Reservoir Characterization
Machine Learning Lithofacies Prediction Using Self-Organizing Maps: Integrated Workflow for Complex Reservoir Characterization
Authors: Fabian Rada (Geophysical Insights), Marwa Hussein (Ain Shams University), and Alvaro Chaveste (Geophysical Insights)
Speakers from Geophysical Insights will attend the APEX Symposium in Bali, Indonesia this April. This presentation highlights an integrated machine learning workflow designed to improve lithofacies prediction in complex reservoirs where well control is sparse and conventional methods can be time-consuming and difficult to scale. By combining K-means clustering of petrophysical log data with Self-Organizing Maps (SOM) analysis of multiple seismic attributes, the workflow enables high-resolution lithofacies prediction directly from seismic data.
The paper demonstrates the approach in two offshore case studies:
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Deep-water Eastern India, where the workflow identified thin Pleistocene gas sands below conventional seismic resolution and achieved 95% agreement with well lithofacies
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Offshore Nile Delta, Mediterranean Sea, where the method supported lithofacies prediction across complex channel systems with ~68% overall accuracy across six calibration wells
The workflow offers several practical advantages for reservoir characterization, including:
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Sample-scale resolution for thin bed identification
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Reduced interpretation time through direct attribute analysis
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Effective performance in areas with limited well control
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Flexible, probability-based outputs that incorporate geological understanding
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Quantified uncertainty to support drilling and development decisions
This work shows how machine learning can serve as a practical complement to traditional interpretation methods, helping geoscientists better characterize stratigraphic complexity and improve confidence in exploration assessment, development planning, and well placement optimization.
Event Details
📅 Date: 15-17 April 2026
📍 Location: Bali, Indonesia
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