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Yile Ao
Yile Ao
Department of Automation, Tsinghua University
Verified email at tsinghua.edu.cn
Title
Cited by
Cited by
Year
The linear random forest algorithm and its advantages in machine learning assisted logging regression modeling
Y Ao, H Li, L Zhu, S Ali, Z Yang
Journal of Petroleum Science and Engineering 174, 776-789, 2019
2072019
Intelligent logging lithological interpretation with convolution neural networks
L Zhu, H Li, Z Yang, C Li, Y Ao
Petrophysics 59 (06), 799-810, 2018
732018
Identifying channel sand-body from multiple seismic attributes with an improved random forest algorithm
Y Ao, H Li, L Zhu, S Ali, Z Yang
Journal of Petroleum Science and Engineering 173, 781-792, 2019
462019
Logging lithology discrimination in the prototype similarity space with random forest
Y Ao, H Li, L Zhu, S Ali, Z Yang
IEEE Geoscience and Remote Sensing Letters 16 (5), 687-691, 2018
392018
Multitask learning for super-resolution of seismic velocity model
Y Li, J Song, W Lu, P Monkam, Y Ao
IEEE Transactions on Geoscience and Remote Sensing 59 (9), 8022-8033, 2020
362020
Probabilistic logging lithology characterization with random forest probability estimation
Y Ao, L Zhu, S Guo, Z Yang
Computers & Geosciences 144, 104556, 2020
312020
Seismic dip estimation with a domain knowledge constrained transfer learning approach
Y Ao, W Lu, P Xu, B Jiang
IEEE Transactions on Geoscience and Remote Sensing 60, 1-16, 2021
292021
Seismic structural curvature volume extraction with convolutional neural networks
Y Ao, W Lu, B Jiang, P Monkam
IEEE Transactions on Geoscience and Remote Sensing 59 (9), 7370-7384, 2020
272020
Choosing classification algorithms and its optimum parameters based on data set characteristics
Y Zhongguo, L Hongqi, S Ali, A Yile
Journal of Computers 28 (5), 26-38, 2017
272017
Super-resolution of seismic velocity model guided by seismic data
Y Li, J Song, W Lu, P Monkam, Y Ao
IEEE Transactions on Geoscience and Remote Sensing 60, 1-12, 2021
172021
UB-Net: Improved seismic inversion based on uncertainty backpropagation
Q Ma, Y Wang, Y Ao, Q Wang, W Lu
IEEE Transactions on Geoscience and Remote Sensing 60, 1-11, 2022
112022
Seismic inversion based on 2D-CNNs and domain adaption
Q Wang, Y Wang, Y Ao, W Lu
IEEE Transactions on Geoscience and Remote Sensing 60, 1-12, 2022
102022
A SCiForest based semi-supervised learning method for the seismic interpretation of channel sand-body
Y Ao, H Li, L Zhu, Z Yang
Journal of Applied Geophysics 167, 51-62, 2019
52019
Sequence-to-sequence borehole formation property prediction via multi-task deep networks with sparse core calibration
Y Ao, W Lu, Q Hou, B Jiang
Journal of Petroleum Science and Engineering 208, 109637, 2022
42022
Combining regression kriging with machine learning mapping for spatial variable estimation
X Li, Y Ao, S Guo, L Zhu
IEEE Geoscience and Remote Sensing Letters 17 (1), 27-31, 2019
42019
Seismic stratigraphic interpretation based on deep active learning
X Gu, W Lu, Y Ao, Y Li, C Song
IEEE Transactions on Geoscience and Remote Sensing, 2023
32023
Seismic inversion based on 2D-CNN and multi-task learning
Q Wang, Y Wang, Y Ao, W Lu
82nd EAGE annual conference & exhibition 2021 (1), 1-5, 2021
32021
Synthesize nuclear magnetic resonance T2 spectrum from conventional logging responses with spectrum regression forest
Y Ao, W Lu, Q Hou, B Jiang
IEEE Geoscience and Remote Sensing Letters 18 (10), 1726-1730, 2020
32020
An alternative approach for machine learning seismic interpretation and its application in Daqing Oilfield
Y Ao, H Li, Z Yang, L Zhu
SEG International Exposition and Annual Meeting, SEG-2018-2989898, 2018
32018
Lane detection by combining trajectory clustering and curve complexity computing in urban environments
Z Yang, H Li, S Ali, Y Ao, S Guo
2017 13th International Conference on Semantics, Knowledge and Grids (SKG …, 2017
32017
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