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Your search keyword '"lithology prediction"' showing total 47 results

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47 results on '"lithology prediction"'

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1. Interpretable SHAP Model Combining Meta-learning and Vision Transformer for Lithology Classification Using Limited and Unbalanced Drilling Data in Well Logging.

2. Real-Time Lithology Prediction at the Bit Using Machine Learning.

3. 基于地震波阻抗随机反演的岩性模型建立.

5. Review of lithology prediction and comprehensive geophysical interpretation methods

6. 岩性预测综合地球物理解释方法综述.

7. Machine learning assisted lithology prediction using geophysical logs: A case study from Cambay basin.

8. A comparative analysis of hybrid RF models for efficient lithology prediction in hard rock tunneling using TBM working parameters.

9. A Transformer and LSTM-Based Approach for Blind Well Lithology Prediction.

10. Real-Time Lithology Prediction at the Bit Using Machine Learning

11. Machine Learning-Based Real-Time Prediction of Formation Lithology and Tops Using Drilling Parameters with a Web App Integration

12. A new approach to predict carbonate lithology from well logs: A case study of the Kometan formation in northern Iraq

13. A Transformer and LSTM-Based Approach for Blind Well Lithology Prediction

14. Machine Learning-Based Real-Time Prediction of Formation Lithology and Tops Using Drilling Parameters with a Web App Integration.

15. Fast Reservoir Characterization with AI-Based Lithology Prediction Using Drill Cuttings Images and Noisy Labels.

16. CHARACTERISTICS OF RESERVOIR DEVELOPMENT IN PINGHU FORMATION IN THE WEST SLOPE OF XIHU SAG.

17. Favorable reservoir prediction and connection model biulting of thick glutenite sediment in basin steep slope zone

18. Evaluation and Development of a Predictive Model for Geophysical Well Log Data Analysis and Reservoir Characterization: Machine Learning Applications to Lithology Prediction.

19. Lithology prediction of tight sandstone formation using GS-LightGBM hybrid machine learning model

20. Fast Reservoir Characterization with AI-Based Lithology Prediction Using Drill Cuttings Images and Noisy Labels

22. Lithology prediction method of coal-bearing reservoir based on stochastic seismic inversion and Bayesian classification: a case study on Ordos Basin.

23. 基于机器学习算法和属性特征 双优选的砂体岩性预测方法.

24. 基于机器学习的储层预测方法.

25. Leveraging automated deep learning (AutoDL) in geosciences.

26. A smart predictor used for lithologies of tight sandstone reservoirs: a case study of member of Chang 4 + 5, Jiyuan Oilfield, Ordos Basin.

27. 基于小波变换和卷积神经网络的地震储层预测方法及应用.

28. Fast Reservoir Characterization with AI-Based Lithology Prediction Using Drill Cuttings Images and Noisy Labels

29. Complex lithology prediction using probabilistic neural network improved by continuous restricted Boltzmann machine and particle swarm optimization.

30. Integrated seismic inversion for clastic reservoir characterization: Case of the upper Silurian reservoir, Tunisian Ghadames Basin.

31. Leveraging legacy data: An onshore reprocessing case study from the Bowen Basin

32. Unsupervised lithology clustering from well logs, a case study in Ha Lam coalfield, Vietnam

33. Separating Well Log Data to Train Support Vector Machines for Lithology Prediction in a Heterogeneous Carbonate Reservoir

34. Automatic lithology prediction from well logging using kernel density estimation.

35. AUGMENTED WIRELINE BASED LITHOLOGY AND FACIES PREDICTION, FOR UPPER ORDOVICIAN SUCCESSION, MURZUQ BASIN, LIBYA.

36. Pattern recognition in lithology classification: modeling using neural networks, self-organizing maps and genetic algorithms.

37. Favorable reservoir prediction and connection model biulting of thick glutenite sediment in basin steep slope zone.

38. Lithology prediction by support vector classifiers using inverted seismic attributes data and petrophysical logs as a new approach and investigation of training data set size effect on its performance in a heterogeneous carbonate reservoir.

39. Support vector machine method, a new technique for lithology prediction in an Iranian heterogeneous carbonate reservoir using petrophysical well logs.

40. Geoelectrical inversion and evaluation of lithology based on optimized Adaptive Neuro Fuzzy Inference System (ANFIS).

41. Data-driven lithology prediction for tight sandstone reservoirs based on new ensemble learning of conventional logs: A demonstration of a Yanchang member, Ordos Basin.

42. Lithological classification via an improved extreme gradient boosting: A demonstration of the Chang 4+5 member, Ordos Basin, Northern China.

44. A new method for predicting formation lithology while drilling at horizontal well bit.

47. Successfulness of inter well lithology prediction on Upper Miocene sediments with artificial neural networks

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