Advancing Reservoir Evaluation: Machine Learning Approaches for Predicting Porosity Curves
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- Marek Stadtműller & Jadwiga A. Jarzyna, 2023. "Estimation of Petrophysical Parameters of Carbonates Based on Well Logs and Laboratory Measurements, a Review," Energies, MDPI, vol. 16(10), pages 1-31, May.
- Kuo, Jan-Tai & Hsieh, Ming-Han & Lung, Wu-Seng & She, Nian, 2007. "Using artificial neural network for reservoir eutrophication prediction," Ecological Modelling, Elsevier, vol. 200(1), pages 171-177.
- Wakeel Hussain & Muhsan Ehsan & Lin Pan & Xiao Wang & Muhammad Ali & Shahab Ud Din & Hadi Hussain & Ali Jawad & Shuyang Chen & Honggang Liang & Lixia Liang, 2023. "Prospect Evaluation of the Cretaceous Yageliemu Clastic Reservoir Based on Geophysical Log Data: A Case Study from the Yakela Gas Condensate Field, Tarim Basin, China," Energies, MDPI, vol. 16(6), pages 1-25, March.
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- Ruibin Zhu & Ning Li & Yongqiang Duan & Gaofeng Li & Guohua Liu & Fengjiao Qu & Changjun Long & Xin Wang & Qinzhuo Liao & Gensheng Li, 2024. "Well-Production Forecasting Using Machine Learning with Feature Selection and Automatic Hyperparameter Optimization," Energies, MDPI, vol. 18(1), pages 1-20, December.
- Mitra Khalilidermani & Dariusz Knez & Mohammad Ahmad Mahmoudi Zamani, 2025. "Shear Wave Velocity in Geoscience: Applications, Energy-Efficient Estimation Methods, and Challenges," Energies, MDPI, vol. 18(13), pages 1-28, June.
- Hussain, Altaf & Pan, Peng-Zhi & Hussain, Javid & Feng, Yujie & Zheng, Qingsong, 2025. "Data-driven machine learning models for predicting deliverability of underground natural gas storage in aquifer and depleted reservoirs," Energy, Elsevier, vol. 319(C).
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