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UPNet: Uncertainty-Based Picking Deep Learning Network for Robust First Break Picking

delete2024-01-01
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OA
AI
H
Hongtao Wang
J
Jiangshe Zhang *
魏晓莉 封面图
魏晓莉 (Xiaoli Wei)
L
Long Li
张春霞 封面图
张春霞 (Chunxia Zhang)
Z
Zhenbo Guo
DOI:10.1109/TGRS.2024.3439685delete
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摘要

摘要

En 中文
In seismic exploration, first break (FB) picking is a crucial aspect in determining subsurface velocity models, significantly influencing the placement of wells. Many deep neural networks (DNNs)-based automatic picking methods have been proposed to accelerate this process. Significantly, the segmentation-based DNN methods provide a segmentation map and then estimate FB from the map using a thresholding technique. However, these automatic methods applied in field datasets cannot ensure robustness, especially in the case of a low signal-to-noise ratio (SNR). In this article, we introduce uncertainty quantification (UQ) into FB picking and propose a novel uncertainty-based picking deep learning network (UPNet). UPNet specifically consists of two DNNs. A Bayesian network infers a posterior distribution by sampling the segmentation map of FB. Subsequently, a regression network integrates the segmentation map, the original trace, and the low-frequency (LF) trace to infer the FB trace by trace. Finally, a decision-making method provides the final FB based on uncertainty analysis, offering robust FB. Importantly, UPNet avoids post-processing to obtain FB using the threshold method, as in the segmentation-based picking methods, and instead provides the FB of each trace end-to-end. Moreover, UPNet not only estimates the uncertainty of the network output but can also filter out predictions with low confidence. Many experiments have shown that UPNet demonstrates higher accuracy and robustness than the deterministic DNN-based model, achieving state-of-the-art (SOTA) performance in field surveys. In addition, we verify that the calculated uncertainty is significant, which can serve as a reference for human decision-making.
Keyword:
Uncertainty
Image segmentation
Task analysis
Accuracy
Deep learning
Convolutional neural networks
Clustering methods
Bayesian deep learning (DL)
first break (FB) picking
uncertainty quantification (UQ)

期刊

IEEE Transactions on Geoscience and Remote Sensing 封面图
IEEE Transactions on Geoscience and Remote Sensing
IF:
8.6
论文数:
2.1W
被引数:
10.7W

机构

X
xi'an jiaotong university
学者数:
9.3W
论文数: 6.7W
被引数: 75
C
China National Petroleum Corporation
学者数:
1.0W
论文数: 7.1K
被引数: 2
引用论文

引用论文

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