首页> 外国专利> UNCERTAINTY ESTIMATION FOR LARGE-SCALE NONLINEAR INVERSE PROBLEMS USING GEOMETRIC SAMPLING AND COVARIANCE-FREE MODEL COMPRESSION

UNCERTAINTY ESTIMATION FOR LARGE-SCALE NONLINEAR INVERSE PROBLEMS USING GEOMETRIC SAMPLING AND COVARIANCE-FREE MODEL COMPRESSION

机译:基于几何采样和无协方差模型压缩的大型非线性逆问题的不确定度估计

摘要

A method for uncertainty estimation for nonlinear inverse problems includes obtaining an inverse model of spatial distribution of a physical property of subsurface formations. A set of possible models of spatial distribution is obtained based on the measurements. A set of model parameters is obtained. The number of model parameters is reduced by covariance free compression transform. Upper and lower limits of a value of the physical property are mapped to orthogonal space. A model polytope including a geometric region of feasible models is defined. At least one of random and geometric sampling of the model polytope is performed in a reduced-dimensional space to generate an equi-feasible ensemble of models. The reduced-dimensional space includes an approximated hypercube. Probable model samples are evaluated based on data misfits from among an equi-feasible model ensemble determined by forward numerical simulation. Final uncertainties are determined from the equivalent model ensemble and the final uncertainties are displayed in at least one map.
机译:一种用于非线性反问题的不确定性估计的方法,包括获得地下岩层物理性质的空间分布的反模型。基于这些测量,获得了一组可能的空间分布模型。获得了一组模型参数。通过无协方差压缩变换来减少模型参数的数量。物理性质的值的上限和下限映射到正交空间。定义了包括可行模型的几何区域的模型多面体。在减小的空间中执行模型多面体的随机和几何采样中的至少一个,以生成模型的等效集合。降维空间包括近似的超立方体。基于正向数值模拟确定的等效模型集合中的数据不匹配,评估可能的模型样本。最终不确定度由等效模型集合确定,并且最终不确定度显示在至少一张地图中。

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