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Bridging element-free Galerkin and pluri-Gaussian simulation for geological uncertainty estimation in an ensemble smoother data assimilation framework
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作者 Bogdan Sebacher Remus Hanea 《Petroleum Science》 SCIE EI CAS CSCD 2024年第3期1683-1698,共16页
The facies distribution of a reservoir is one of the biggest concerns for geologists,geophysicists,reservoir modelers,and reservoir engineers due to its high importance in the setting of any reliable decisionmaking/op... The facies distribution of a reservoir is one of the biggest concerns for geologists,geophysicists,reservoir modelers,and reservoir engineers due to its high importance in the setting of any reliable decisionmaking/optimization of field development planning.The approach for parameterizing the facies distribution as a random variable comes naturally through using the probability fields.Since the prior probability fields of facies come either from a seismic inversion or from other sources of geologic information,they are not conditioned to the data observed from the cores extracted from the wells.This paper presents a regularized element-free Galerkin(R-EFG)method for conditioning facies probability fields to facies observation.The conditioned probability fields respect all the conditions of the probability theory(i.e.all the values are between 0 and 1,and the sum of all fields is a uniform field of 1).This property achieves by an optimization procedure under equality and inequality constraints with the gradient projection method.The conditioned probability fields are further used as the input in the adaptive pluri-Gaussian simulation(APS)methodology and coupled with the ensemble smoother with multiple data assimilation(ES-MDA)for estimation and uncertainty quantification of the facies distribution.The history-matching of the facies models shows a good estimation and uncertainty quantification of facies distribution,a good data match and prediction capabilities. 展开更多
关键词 Element free Galerkin(EFG) Adaptive pluri-Gaussian simulation(APS) Facies distribution estimation Ensemble smoother with multipledata assimilation(ESMDA)
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基于多通道数据流在线相关分析及聚类的闸站工程安全监测 被引量:3
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作者 包加桐 钱江 +2 位作者 张炜 唐鸿儒 汤方平 《农业工程学报》 EI CAS CSCD 北大核心 2019年第3期101-108,共8页
闸站工程自动安全监测可积累大量高质量监测数据,然而对这些数据的在线自动分析手段较为有限。该文提出一种针对多通道实时监测数据流的在线相关分析与聚类方法,以挖掘多个感兴趣测点通道数据流之间的联系。该方法能够在线快速计算数据... 闸站工程自动安全监测可积累大量高质量监测数据,然而对这些数据的在线自动分析手段较为有限。该文提出一种针对多通道实时监测数据流的在线相关分析与聚类方法,以挖掘多个感兴趣测点通道数据流之间的联系。该方法能够在线快速计算数据流的统计特征,在计算数据流之间相关性度量的基础上,对多数据流进行自动聚类。以泰州高港闸站工程安全监测系统为例,针对扬压力、伸缩缝、温度等多类型共65个通道数据流进行在线相关分析与聚类,一次特征计算、分析与聚类总时长低于1 s,满足在线处理的实时性要求。该文提出的方法能够判断闸站工程渗压情况、伸缩缝与温度变化特性等,可有效发现潜在的工程安全问题或传感器故障。 展开更多
关键词 聚类分析 在线系统 相关方法 闸站工程 安全监测 多数据流
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