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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Geostatistical inversion of prestack seismic data for the joint estimation of facies and impedances using stochastic sampling from Gaussian mixture posterior distributions
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Geostatistical inversion of prestack seismic data for the joint estimation of facies and impedances using stochastic sampling from Gaussian mixture posterior distributions

机译:使用随机抽样从高斯混合后分布使用随机取样的面部和阻抗联合估计的地统计反演

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摘要

We have developed a seismic inversion method for the joint estimation of facies and elastic properties from prestack seismic data based on a geostatistical approach. The objectives of our inversion methodology are to sample from the posterior distribution of seismic properties and to simultaneously classify the lithology conditioned by seismic data. The inversion algorithm is a sequential Gaussian mixture inversion based on Bayesian linearized amplitude variation with offset inverse theory and sequential geostatistical simulations. The stochastic approach to the inversion allows generating multiple elastic models that match the seismic data. To mathematically represent the multimodal behavior of elastic properties due to their variations within different lithologies, we adopt a Gaussian mixture distribution for the prior model of the elastic properties and we use the prior probability of the facies as weights of the Gaussian components of the mixture. The solution of the inverse problem is achieved by deriving the explicit analytical expression of the posterior distribution of the elastic properties and facies and by sampling from this distribution according to a spatial correlation model. The inversion methodology has been validated using well logs and synthetic seismic data with different noise levels, and it is then applied to a real 3D seismic data set in North Sea.
机译:基于地质统计方法,我们开发了一种地震反演方法,用于从Prestack地震数据与Prestack地震数据联合估计的相机。我们的反转方法的目标是从地震性能的后部分布来样,并同时对地震数据调节岩性的分布。反转算法是基于偏移逆理论和顺序地质统计模拟的贝叶斯线性化幅度变化的顺序高斯混合反转。转换的随机方法允许产生符合地震数据的多个弹性模型。为了数学地代表弹性特性的多峰行为,由于它们在不同岩性内的变化,我们采用了弹性特性的先前模型的高斯混合分布,并且我们使用面部的现有概率作为混合物的高斯组分的重量。通过根据空间相关模型导出弹性特性和面部的后部分布的显式分析表达以及从该分布采样来实现逆问题的解决方案。使用良好的日志和合成地震数据具有不同噪声水平的良好日志和合成地震数据进行了验证,然后将其应用于北海的真正3D地震数据。

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