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MSSPN; automatic first-arrival picking using a multistage segmentation picking network

Wang Hongtao, Zhang Jiangshe, Wei Xiaoli, Zhang Chunxia, Long Li and Guo Zhenbo
MSSPN; automatic first-arrival picking using a multistage segmentation picking network
Geophysics (June 2024) 89 (3): U53-U70

Abstract

Picking the first arrival of prestack gathers is an indispensable step in seismic data processing. To enhance the efficiency of seismic data processing, some deep-learning-based methods for first-arrival picking have been developed. However, when applying currently trained models to data that significantly differ from the training set, the results are often suboptimal. We refer to this predictive scenario as cross-survey picking. Therefore, further improving model generalization for accurate cross-survey picking has become an urgent problem. To overcome the problem, we develop a multistage picking method called multistage segmentation picking network (MSSPN), which breaks down the complex picking task into four stages. In the first stage, we develop a coarse segmentation network to recognize a rough trend of first arrivals. Second, a robust trend estimation method is developed in the second stage to further obtain a tighter range of first arrivals. Third, a refined segmentation network is conducted in the third stage to pick high-precision first arrivals. Finally, we develop a velocity constraint-based postprocessing strategy to remove the outliers of network pickings. Extensive experiments indicate that MSSPN outperforms current state-of-the-art methods under the cross-survey test situation in terms of the metrics of accuracy and stability. Particularly, MSSPN achieves 94.64% and 89.74% accuracy under the cross-survey field cases of the median and low signal-to-noise ratio data, respectively.


ISSN: 0016-8033
EISSN: 1942-2156
Coden: GPYSA7
Serial Title: Geophysics
Serial Volume: 89
Serial Issue: 3
Title: MSSPN; automatic first-arrival picking using a multistage segmentation picking network
Affiliation: Xi'an Jiaotong University, School of Mathematics and Statistics, Xi'an, China
Pages: U53-U70
Published: 202406
Text Language: English
Publisher: Society of Exploration Geophysicists, Tulsa, OK, United States
References: 43
Accession Number: 2024-032174
Categories: Applied geophysics
Document Type: Serial
Bibliographic Level: Analytic
Illustration Description: illus. incl. 6 tables, sects.
N20°00'00" - N53°00'00", E74°00'00" - E135°00'00"
N42°00'00" - N84°00'00", W141°00'00" - W52°00'00"
Secondary Affiliation: Bureau of Geophysical Prospecting, CHN, China
Country of Publication: United States
Secondary Affiliation: GeoRef, Copyright 2024, American Geosciences Institute. Reference includes data from GeoScienceWorld, Alexandria, VA, United States. Reference includes data supplied by Society of Exploration Geophysicists, Tulsa, OK, United States
Update Code: 2024

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