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A numerical study of single source localization algorithms for phaseless inverse scattering problems

机译:释放逆散射问题单源定位算法的数值研究

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摘要

Phaseless inverse scattering problems appear often in practical applications since phaseless data are relatively easier to measure than the phased data, but they are also numerically more difficult to solve due to the translation invariance property. Based on three distinct noisy measurements of phaseless far-field data, the phase information can be approximately reconstructed by formulating it as a single source localization problem, for which many efficient algorithms are readily available. In this paper, we numerically compare several source localization algorithms based on different norm formulations in the context of inverse scattering. As one major contribution, we propose an improved phase retrieval algorithm, which addresses some pitfalls of the original phase retrieval algorithm in [X. Ji, X. Liu, B. Zhang, SIAM J. Imaging Sci. 12 (1) (2019) 372-391.] Moreover, a simple criterion of minimizing the condition number of the underlying linear least square system is advocated for optimizing the choices of scattering strengths (or sensors' locations). Extensive numerical results are shown to illustrate the similarity and difference among the tested algorithms.
机译:释放逆散射问题通常在实际应用中出现,因为默认数据比分阶段数据相对较容易测量,但由于翻译不变性属性,它们也是数值更难以解决的。基于无释放远场数据的三个不同的噪声测量,通过将其作为单个源定位问题将其制定,可以大致重建相位信息,其中许多有效的算法很容易获得。在本文中,我们在逆散射的背景下基于不同规范制剂的几个源定位算法进行了数值比较。作为一种主要贡献,我们提出了一种改进的相位检索算法,它解决了[X.的原始相位检索算法的一些陷阱吉,X.刘,B.张,暹罗J.映像SCI。 12(1)(2019)372-391。]此外,提倡最小化底线最小二乘系统的条件数量的简单标准,以优化散射强度(或传感器位置)的选择。显示了广泛的数值结果,以说明测试算法之间的相似性和差异。

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