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Inequality constraint in least-squares inversion of geophysical data

机译:地球物理数据最小二乘反演中的不等式约束

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This paper presents a simple, generalized parameter constraint using a priori information to obtain a stable inverse of geophysical data. In the constraint the a priori information can be expressed by two limits: lower and upper bounds. This is a kind of inequality constraint, which is usually employed in linear programming. In this paper, we have derived this parameter constraint as a generalized version of positiveness constraint of parameter, which is routinely used in the inversion of electrical and EM data. However, the two bounds are not restricted to positive values. The width of two bounds reflects the reliability of ground information, which is obtained through well logging and surface geology survey. The effectiveness and convenience of this inequality constraint is demonstrated through the smoothness-constrained inversion of synthetic magnetotelluric data.
机译:本文提出了一种简单的,通用的参数约束条件,它使用先验信息来获得稳定的地球物理数据反演。在约束中,先验信息可以由两个限制表示:下限和上限。这是一种不等式约束,通常在线性规划中使用。在本文中,我们已经将此参数约束导出为参数正约束的广义形式,通常用于电气和EM数据反演。但是,两个界限不限于正值。两个边界的宽度反映了地面信息的可靠性,这是通过测井和地表地质调查获得的。这种不等式约束的有效性和便利性通过合成大地电磁数据的平滑度约束反演得到证明。

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