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Bayesian lithology/fluid inversion-comparison of two algorithms

机译:贝叶斯岩性/流体反演两种算法的比较

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Algorithms for inversion of seismic prestack AVO data into lithology-fluid classes in a vertical profile are evaluated. The inversion is defined in a Bayesian setting where the prior model for the lithology-fluid classes is a Markov chain, and the likelihood model relates seismic data and elastic material properties to these classes. The likelihood model is approximated such that the posterior model can be calculated recursively using the extremely efficient forward-backward algorithm. The impact of the approximation in the likelihood model is evaluated empirically by comparing results from the approximate approach with results generated from the exact posterior model. The exact posterior is assessed by sampling using a sophisticated Markov chain Monte Carlo simulation algorithm. The simulation algorithm is iterative, and it requires considerable computer resources. Seven realistic evaluation models are defined, from which synthetic seismic data are generated. Using identical seismic data, the approximate marginal posterior is calculated and the exact marginal posterior is assessed. It is concluded that the approximate likelihood model preserves 50% to 90% of the information content in the exact likelihood model.
机译:评估了将地震叠前AVO数据反演为垂直剖面中的岩性-流体类的算法。在贝叶斯环境中定义反演,其中岩性流体类的先验模型是马尔可夫链,似然模型将地震数据和弹性材料属性与这些类相关。对似然模型进行近似,以便可以使用极其有效的前向后向算法递归计算后验模型。通过将近似方法的结果与精确后验模型生成的结果进行比较,经验评估了近似模型对似然模型的影响。通过使用复杂的马尔可夫链蒙特卡洛模拟算法进行采样来评估确切的后验。仿真算法是迭代的,并且需要大量的计算机资源。定义了七个现实的评估模型,从中生成了综合地震数据。使用相同的地震数据,计算近似的边缘后验,并评估确切的边缘后验。结论是,近似似然模型保留了精确似然模型中50%至90%的信息内容。

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