Extracting Lithofacies from Digital Well Logs Using Artificial Intelligence, Panoma (Council Grove) Field, Hugoton Embayment, Southwest Kansas
Kansas Geological Survey
Open-file Report 2003-68

Accuracy statistics comparisons show the improvement in neural network predictions when geologic constraining variables are added. Absolute accuracy increases from 58% with no GCV's to 64% with M-NM and to 70% with RelPos added. Accuracy within one lithofacies and proportional representation show similar improvements.

GCV's additions were accomplished in the following manner:


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