Oil reservoir automatic history fitting method based on generative adversarial network
A history matching and automatic technology, applied in biological neural network models, neural learning methods, design optimization/simulation, etc., can solve problems such as difficulty in obtaining subsurface models and difficult convergence of reservoir models, and achieve the effect of accurate history matching
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[0031] Such as figure 1 As shown, the traditional history matching algorithm is to first establish multiple geological models with equal probability through some static parameters, and use these geological models as prior models to update the geological parameters of the reservoir by fitting the actual production data, and finally obtain a suitable reservoir. hidden model estimates. Reservoir simulation can be fitted using dynamic data such as oil field average pressure, single well pressure, oil field, and single well production.
[0032] This embodiment provides a method for predicting remaining oil based on generating adversarial networks, such as figure 2 As shown, the following steps are included in sequence:
[0033] S1. Collect data, including collecting permeability field data, numerically simulating production data, and forming a data set from permeability field data and production data;
[0034] S2. Preprocessing the permeability field data and production data co...
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