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KINEMATIC INVERSION OF FIRST ARRIVALS OF REFRACTED WAVES - A COMBINED APPROACH

机译:延迟波首次到达的运动学反演-一种组合方法

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The inversion of first-arrival times of refracted waves in media with laterally varying parameters can be per formed using the refraction tomography technique. Tomographic inversion implemented as a linearized, constrained, least-squares, iterative scheme requires some a priori information on either refractor depth or velocity above the refractor; however, such information may be unavailable. On the other hand, in many cases a reasonable estimate of the average velocity distribution above the refractor can be obtained by a nontomographic technique such as the generalized reciprocal method (GRM). I propose a combined approach to the inversion problem that uses the advantages of both the refraction tomography and GRM techniques and which does not require additional information not contained in first arrival rimes. The approach is based upon two assumptions (which prove to be true in most situations). The first is that a reasonable local estimate of refractor velocity can be obtained by tomographic inversion independently of other model parameters, and the second is that the derivative of the velocity analysis function as defined by the GRM, gives a good local approximation of the refractor slowness. The proposed combined inversion scheme can be described as a three-step procedure. In the first stop, the laterally varying refractor velocity is estimated by tomographic inversion. In the second step, local estimation of laterally varying average velocity above the refractor is performed by the GRM on the basis of the previously estimated refractor velocity. In the third step, the estimated values of the average velocity are used as the corresponding constrained initial parameters for tomographic inversion. [References: 12]
机译:可以使用折射层析成像技术对参数在横向变化的介质中折射波的首次到达时间进行反演。层析成像反演以线性化,约束,最小二乘迭代方案实施,需要有关折射器深度或折射器上方速度的一些先验信息。但是,此类信息可能不可用。另一方面,在许多情况下,可以通过非断层摄影技术(例如广义倒数方法(GRM))获得折射器上方平均速度分布的合理估计。我提出了一种结合反演问题的组合方法,该方法利用了折射层析成像和GRM技术的优势,并且不需要先到达边缘中未包含的其他信息。该方法基于两个假设(在大多数情况下证明是正确的)。首先是可以通过层析成像反演独立于其他模型参数来获得合理的局部折射速度估计值,其次是由GRM定义的速度分析函数的导数给出了折射体慢度的良好局部近似值。提出的组合反演方案可以描述为三步过程。在第一站,通过层析成像反演估计横向变化的折射速度。在第二步骤中,由GRM基于先前估计的折射器速度对折射器上方的横向变化的平均速度进行局部估计。在第三步中,将平均速度的估计值用作相应的约束条件,以进行层析反演。 [参考:12]

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