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首页> 外文期刊>IEEE Transactions on Antennas and Propagation >Conjugate gradient method applied to inverse scattering problem
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Conjugate gradient method applied to inverse scattering problem

机译:共轭梯度法应用于反散射问题

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摘要

A new reconstruction algorithm for diffraction tomography is presented. The algorithm is based on the minimization of a functional which is defined as the norm of the discrepancy between the measured scattering amplitude and the calculated one for an estimated object function. By using the conjugate gradient method to minimize the functional, one can derive an iterative formula for getting the object function. Numerical results for some two-dimensional scatterers show that the algorithm is very effective in reconstructing refractive index distributions to which the first-order Born approximation can not be applied. In addition, the number of iterations is reduced by using a priori information about the outer boundary of the objects. Furthermore, the method is not so sensitive to the presence of noise in the scattered field data
机译:提出了一种新的衍射层析重建算法。该算法基于功能的最小化,该功能被定义为所测得的散射幅度与所估计的目标函数的计算出的幅度之间的差异范数。通过使用共轭梯度法最小化泛函,可以推导一个迭代公式来获得目标函数。某些二维散射体的数值结果表明,该算法在重建无法应用一阶Born近似的折射率分布方面非常有效。此外,通过使用有关对象外边界的先验信息来减少迭代次数。此外,该方法对散射场数据中是否存在噪声不太敏感。

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