论文标题

复杂介质反射矩阵中单一和复发散射的重量

Weight of single and recurrent scattering in the reflection matrix of complex media

论文作者

Brütt, Cécile, Aubry, Alexandre, Gérardin, Benoît, Derode, Arnaud, Prada, Claire

论文摘要

在异质介质中,波场可以分解为无限序列,称为天生的扩张。天生膨胀的每个项都对应于散射顺序,因此从理论上讲可以区分单个和多个散射场成分。在实验上,实际测量的是所有散射顺序干扰的总场。常规成像方法通常取决于可以忽略多个散射贡献的假设。在反向片段配置中,此假设对于小深度有效,并且开始对深度大于散射均值路径$ \ ell_s $的深度失败。因此,这是估计实验数据中单个和多个散射的相对量的关键问题。为此,已经引入了从反射矩阵中计算出的单个散射估计器$ \hatρ$,以评估反向散射波场中单个散射的重量。在本文中,研究了该估计量的含义,并特别注意反复散射。在衍射限制的实验中,如果第一个也是最后一次散射事件发生在同一分辨率细胞中,则据说多个散射序列会经常出现。复发散射被证明是造成单个散射和较高散射顺序之间的相关性的原因,这会引起对估计量$ \hatρ$的偏见,而估计器$ \hatρ$宁愿被称为共聚焦散射率。有趣的是,通过以重点投影反射矩阵来构建一个更强大的估计器。该论点是由数值模拟以及在浸入水中的尼龙棒制成的模型培养基中获得的超声数据。从更一般的角度来看,这项工作提出了有关复发散射对波成像的影响的基本问题。

In a heterogeneous medium, the wavefield can be decomposed as an infinite series known as the Born expansion. Each term of the Born expansion corresponds to a scattering order, it is thus theoretically possible to discriminate single and multiple scattering field components. Experimentally, what is actually measured is the total field in which all scattering orders interfere. Conventional imaging methods usually rely on the assumption that the multiple scattering contribution can be disregarded. In a back-scattering configuration, this assumption is valid for small depths, and begins to fail for depths larger than the scattering mean-free path $\ell_s$. It is therefore a key issue to estimate the relative amount of single and multiple scattering in experimental data. To this end, a single scattering estimator $\hatρ$ computed from the reflection matrix has been introduced in order to assess the weight of single scattering in the backscattered wavefield. In this article, the meaning of this estimator is investigated and a particular attention is given to recurrent scattering. In a diffraction-limited experiment, a multiple scattering sequence is said to be recurrent if the first and last scattering events occur in the same resolution cell. Recurrent scattering is shown to be responsible for correlations between single scattering and higher scattering orders of the Born expansion, inducing a bias to the estimator $\hatρ$ that should rather be termed confocal scattering ratio. Interestingly, a more robust estimator is built by projecting the reflection matrix in a focused basis. The argument is sustained by numerical simulations as well as ultrasonic data obtained around 1.5~MHz in a model medium made of nylon rods immersed in water. From a more general perspective, this work raises fundamental questions about the impact of recurrent scattering on wave imaging.

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