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首页|期刊导航|石油科学通报|多源断控岩溶型溶洞训练数据集构建和生成对抗网络三维建模应用

多源断控岩溶型溶洞训练数据集构建和生成对抗网络三维建模应用

胡迅 侯加根 刘钰铭

石油科学通报2024,Vol.9Issue(3):422-433,12.
石油科学通报2024,Vol.9Issue(3):422-433,12.DOI:10.3969/j.issn.2096-1693.2024.03.031

多源断控岩溶型溶洞训练数据集构建和生成对抗网络三维建模应用

Construction of a multi-source fault-controlled karst cave training dataset and application in three-dimensional modelling using generative adversarial networks

胡迅 1侯加根 1刘钰铭1

作者信息

  • 1. 中国石油大学(北京)地球科学学院,北京 102249
  • 折叠

摘要

Abstract

Currently,there is no comprehensive training dataset available for the modelling of fault-controlled karst caves using deep learning.In this study,we constructed prototype models for fault-controlled karst caves using outcrop data,seismic data,reliable geological models,and object-based methods.We combined,rotated,cropped,and selected prototype models from different sources to create a reliable and diverse training dataset for fault-controlled karst caves.Additionally,we constructed corresponding virtual well and probability map training datasets,all of which were used to train conditional generative adversarial networks(GANs).The trained generator convolutional neural network was applied to TH12330 well block,Tahe Oilfield.The generated multiple geological models for fault-controlled karst caves were consistent with geological patterns,conditioning well data,conditioning probability map data,and aligned with fracture structures,fractures,and cumulative production.This research explores the construction of a multi-source training dataset for fault-controlled karst caves and has achieved significant success in a real application example.Furthermore,it provides new insights into building reliable and diverse training dataset for deep learning modelling in other types of reservoirs.

关键词

断控岩溶型溶洞/训练数据集/生成对抗网络/深度学习/地质建模

Key words

fault-controlled karst caves/training dataset/generative adversarial networks/deep learning/geological modelling

分类

能源科技

引用本文复制引用

胡迅,侯加根,刘钰铭..多源断控岩溶型溶洞训练数据集构建和生成对抗网络三维建模应用[J].石油科学通报,2024,9(3):422-433,12.

基金项目

国家自然科学基金面上项目(42072146)资助 (42072146)

石油科学通报

OACSTPCD

2096-1693

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