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Seismic ray tracing in anisotropic media: A modified Newton algorithm for solving highly nonlinear systems

机译:各向异性介质中的地震射线追踪:一种求解高度非线性系统的改进牛顿算法

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摘要

Seismic ray tracing with a path-bending method leads to a nonlinear system that has much stronger nonlinearity in anisotropic media than the counterpart in isotropic media. Any path perturbation causes changes to directional velocities, which depend not only upon the spatial position but also upon the local propagation direction in anisotropic media. To combat the high nonlinearity of the problem, the Newton-type iterative algorithm is modified by enforcing Fermat’s minimum-time principle as a constraint for the solution update, instead of conventional error minimization in the nonlinear system. As the algebraic problem is incorporated with the physical principle, it is able to stabilize the solution for such a highly nonlinear problem as ray tracing in realistically complicated anisotropic media. With this modified algorithm, two ray-tracing schemes are presented. The first scheme involves newly derived raypath equations, which are approximate for anisotropic media but the minimum- time constraint will ensure that the solution steadily converges to the true solution. The second scheme is based on the minimal variation principle. It is more efficient than the first one as it solves a tridiagonal system and does not need to compute the Jacobian and its inverse in each iteration. Even in this second scheme, Fermat’s minimum-time constraint is employed for the solution update, so as to guarantee a robust convergence of the iterative solution in anisotropic media
机译:使用路径弯曲方法进行地震射线追踪会导致一个非线性系统,该系统在各向异性介质中的非线性要比在各向同性介质中的非线性要强得多。任何路径的扰动都会引起方向速度的变化,这不仅取决于空间位置,还取决于各向异性介质中的局部传播方向。为了解决该问题的高度非线性问题,牛顿型迭代算法通过强制使用Fermat的最小时间原理作为解决方案更新的约束条件进行了修改,而不是非线性系统中的常规误差最小化。由于将代数问题与物理原理结合在一起,因此它能够稳定解决高度非线性的问题,例如在现实中复杂的各向异性介质中进行射线追踪的问题。利用该改进算法,提出了两种射线追踪方案。第一种方案涉及新导出的射线路径方程,该方程对于各向异性介质是近似的,但是最小时间约束将确保解稳定地收敛到真实解。第二种方案基于最小变化原理。它比第一个更有效,因为它解决了一个三对角线系统,并且不需要在每次迭代中都计算Jacobian及其逆。即使在第二种方案中,费马的最小时间约束也用于解决方案更新,以确保各向异性介质中迭代解的鲁棒收敛。

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