Seismic Facies-Guided High-Precision Geological Anomaly Identification Method and Application

被引:0
|
作者
Duan, Jing [1 ]
Zhang, Gulan [1 ,2 ]
You, Jiachun [3 ]
Hu, Guanghui [4 ]
Luo, Yiliang [1 ]
Ran, Shiyun [1 ]
Zhong, Qihong [1 ]
Cao, Caijun [1 ]
Tang, Wenjie [1 ]
Liang, Chenxi [1 ]
机构
[1] Southwest Petr Univ, Sch Geosci & Technol, Chengdu 610500, Peoples R China
[2] Southwest Petr Univ, State Key Lab Oil & Gas Reservoir Geol & Exploitat, Chengdu 610500, Peoples R China
[3] Chengdu Univ Technol, Coll Geophys, Chengdu 610059, Peoples R China
[4] Sinopec Inst Geophys Technol, Nanjing 211103, Peoples R China
基金
中国国家自然科学基金;
关键词
Geology; Three-dimensional displays; Coherence; Complexity theory; Fault diagnosis; Accuracy; Target tracking; Cross-correlation algorithm; geological anomaly identification; seismic facies-guided; DEEP-WATER CHANNEL; COHERENCE ATTRIBUTE; TARANAKI BASIN; SEMBLANCE;
D O I
10.1109/TGRS.2024.3458919
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The popular geological anomaly (such as fault, river course, cave, and crack) identification methods, such as coherence cube, semblance, likelihood, and others, usually can achieve higher precision geological anomaly identification results when applied to the target horizon flattened seismic data, comparing to their counterparts using the target horizon-unflattened seismic data. However, these methods still face great challenges in achieving high-precision geological anomaly identification results, due to the complexity of the geological structure (or the seismic data) and the horizon tracking accuracy of the target horizon. To minimize the impact of the complexity of geological structure and the horizon tracking accuracy of the target horizon in geological anomaly identification, thereby obtaining high-precision geological anomaly identification results and providing precise labels for deep-learning-based geological anomaly identification methods, we propose a seismic facies-guided high-precision geological anomaly identification method (FHGI), basing on the concept of seismic facies and the cross-correlation algorithm. FHGI contains the flowchart of FHGI, and the seismic facies-guided trace-by-trace high-precision geological anomaly identification factor calculation (FTGC); in which FTGC consists of the target horizon-based seismic data flattening (THF), the seismic facies-guided target trace 2-D subseismic dataset generation (FTG), the cross-correlation algorithm-based target horizon further flattening (CFA), and the cross-correlation coefficient-based high-precision geological anomaly identification factor calculation (CGC). The THF aims to reduce the impact of the complexity of the geological structure and provide the input 3-D seismic data for the FTG. FTG aims to automatically generate the 2-D subseismic dataset corresponding to the target trace, thereby further reducing the impact of the complexity of the geological structure and providing the input 2-D subseismic dataset for CFA. CFA takes the target trace in the result of FTG as the reference for cross-correlation functions calculation and then uses them to further flatten the target horizon in the result of FTG, thereby minimizing the impact of the horizon tracking accuracy of the target horizon and providing the input 2-D subseismic dataset for CGC. CGC takes the target trace in the result of CFA as the reference for cross-correlation coefficient calculation and then uses them for high-precision geological anomaly identification factor calculation, thereby providing high-precision geological anomaly identification results. A public synthetic seismic dataset and actual 3-D seismic dataset examples demonstrate that FHGI has great potential as a technique for geological anomaly identification.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] New method of high-precision thermometry
    Poulsen, Peter
    Ault, Stanley K.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2006, 77 (09):
  • [22] Rapid and high-precision measurement method for fine pitch gears without high-precision installation
    Guo, Shu
    Song, Huixu
    Sun, Yanqiang
    Shi, Zhaoyao
    Yu, Bo
    MEASUREMENT, 2024, 237
  • [23] Design and Application of Real-Time and High-Precision Seismic Acquisition Station in Antarctic Region
    Zhang, Jinhang
    Wang, Yongqing
    Zhou, Keyu
    Lin, Zucan
    Zhang, Qisheng
    INTERNATIONAL JOURNAL OF CIRCUIT THEORY AND APPLICATIONS, 2024,
  • [24] Application of High-Precision Seismic Exploration Technology Under the Conditions of Complex Topography in Western China
    Hou, Shenjian
    INTERNATIONAL CONFERENCE ON FRONTIERS OF ENVIRONMENT, ENERGY AND BIOSCIENCE (ICFEEB 2013), 2013, : 81 - 87
  • [25] Research and application of intelligent seismic identification technology of sedimentary facies
    Yang C.
    Meng H.
    Ye Y.
    Yong X.
    Chang D.
    Shiyou Diqiu Wuli Kantan/Oil Geophysical Prospecting, 2023, 58 (03): : 528 - 539
  • [26] A Hybrid Prediction Method for Bridging GPS Outages in High-Precision POS Application
    Chen, Linzhouting
    Fang, Jiancheng
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2014, 63 (06) : 1656 - 1665
  • [27] High-precision measurement of chlorine in sphalerite by electron probe microanalysis: Method and application
    Zhang, Di
    Meng, Yu-Miao
    Huang, Xiao-Wen
    Meng, Song-Ning
    Hu, Rui-Zhong
    Bi, Xian-Wu
    ORE GEOLOGY REVIEWS, 2024, 167
  • [28] High-precision velocity analysis method in prestack time domain and its application
    Xie, Yu-Hong
    Chen, Dian-Yuan
    Liu, Ai-Qun
    Li, Zhen-Chun
    Zhou, Qing
    Wang, Li-Jun
    Zhongguo Shiyou Daxue Xuebao (Ziran Kexue Ban)/Journal of China University of Petroleum (Edition of Natural Science), 2014, 38 (02): : 38 - 43
  • [29] Research on High-precision and High-speed Bioimpedance Spectroscopy Detection Method for Tumour Identification
    Wang, Zhong-Wei
    Liu, Kai
    Hu, Song-Pei
    Zou, Bin
    Pan, Min-Hong
    Yao, Jia-Feng
    PROGRESS IN BIOCHEMISTRY AND BIOPHYSICS, 2025, 52 (03) : 772 - 782
  • [30] High-precision optical interferometry and application to Be stars
    Tycner, C
    PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF THE PACIFIC, 2004, 116 (825) : 1081 - 1081