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An ensemble learning paradigm for subsurface stratigraphy from sparse measurements and augmented training images

The performance of computer vision-based techniques for stratigraphic modeling relies heavily on qualified training images to capture the complex stratigraphic connectivity. In geotechnical engineering, only limited training images are available for a specific site. Stochastic simulation modelling b...

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書目詳細資料
Main Authors: Shi, Chao, Wang, Yu, Yang, Haoqing
其他作者: School of Civil and Environmental Engineering
格式: Article
語言:English
出版: 2024
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在線閱讀:https://hdl.handle.net/10356/180730
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機構: Nanyang Technological University
語言: English