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Fast inverse scattering solutions using the distorted Born iterative method and the multilevel fast multipole algorithm

机译:使用失真的Born迭代方法和多级快速多极子算法的快速逆散射解

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摘要

The distorted Born iterative method (DBIM) computes iterative solutions to nonlinear inverse scattering problems through successive linear approximations. By decomposing the scattered field into a superposition of scattering by an inhomogeneous background and by a material perturbation, large or high-contrast variations in medium properties can be imaged through iterations that are each subject to the distorted Born approximation. However, the need to repeatedly compute forward solutions still imposes a very heavy computational burden. To ameliorate this problem, the multilevel fast multipole algorithm (MLFMA) has been applied as a forward solver within the DBIM. The MLFMA computes forward solutions in linear time for volumetric scatterers. The typically regular distribution and shape of scattering elements in the inverse scattering problem allow the method to take advantage of data redundancy and reduce the computational demands of the normally expensive MLFMA setup. Additional benefits are gained by employing Kaczmarz-like iterations, where partial measurements are used to accelerate convergence. Numerical results demonstrate both the efficiency of the forward solver and the successful application of the inverse method to imaging problems with dimensions in the neighborhood of ten wavelengths.
机译:变形的Born迭代法(DBIM)通过连续线性逼近计算非线性逆散射问题的迭代解。通过不均匀的背景和材料的扰动将散射场分解为散射的叠加,可以通过迭代对介质属性的大或高对比度变化进行成像,每个迭代都经受扭曲的Born近似。但是,重复计算正解的需求仍然带来很大的计算负担。为了改善这个问题,多级快速多极算法(MLFMA)已被用作DBIM中的正向求解器。 MLFMA在线性时间内为体积散射体计算正解。反散射问题中散射元素的典型规则分布和形状使该方法能够利用数据冗余并减少通常昂贵的MLFMA设置的计算需求。通过采用类似于Kaczmarz的迭代,可以获得额外的好处,其中使用局部测量来加速收敛。数值结果证明了前向求解器的效率以及逆方法在十个波长附近的尺寸成像问题上的成功应用。

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