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Local spectral analysis of short-pulse excited scattering from weakly inhomogeneous media. II. Inverse scattering

机译:来自弱非均匀介质的短脉冲激发散射的局部光谱分析。二。反散射

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For Pt.I see ibid., vol.47, no.7, p.1208-17 (July 1999). This paper is concerned with the reconstruction of a weakly inhomogeneous scattering profile from data generated by a short-pulse incident plane wave, which is postprocessed so as to localize the interrogated region to a space-time resolved scattering cell, The phase-space localization due to postprocessing is brought about by applying local (i.e., windowed) slant-stack transforms to the time-dependent scattered fields. In the domain of the scatterer, this processing corresponds to applying windowed Radon transforms to the induced field distribution, which, in turn, generates pulsed-beam (PB) wave packets traveling toward the observer. The forward analysis parameterizing this new form of time-domain (TD) diffraction tomography has been performed in a companion paper and furnishes the framework for the investigation here. Via the forward parameterization, the three-dimensional (3-D) global scattering phenomenology has been reduced to scattering from an equivalent one-dimensional (1-D) scattering cell oriented along the bisector between the direction of the incident plane pulse and the direction of the scattered pulsed beam (PB) to the observer. For the inverse problem, this process is reversed by windowing the scattered field and backpropagating the resulting PBs so as to form local images of any selected region in the scattering domain. The phase-space signature of the scattering cell is related to the Radon transform of the medium in the cell so that the local profile function can be recovered by Radon inversion. An illustrative numerical example is included. Also discussed is the ultimate localization achieved by incident PB excitation and PB postprocessing of the scattered field.
机译:关于上篇,同上,第47卷第7期,第1208-17页(1999年7月)。本文涉及从短脉冲入射平面波产生的数据重建弱非均匀散射剖面的方法,该数据经过后处理以便将被询问的区域定位到一个时空分辨的散射单元,相空间局部化是由于通过对时间相关的散射场应用局部(即窗口化)倾斜堆栈变换来进行后处理。在散射体的域中,此处理对应于对感应场分布应用加窗的Radon变换,这又会生成朝向观察者传播的脉冲束(PB)波包。在随附的论文中进行了参数化这种新形式的时域(TD)衍射层析成像的正向分析,并为本文的研究提供了框架。通过正向参数化,三维(3-D)全局散射现象已简化为来自等效平面的一维(1-D)散射单元的散射,该单元沿入射平面脉冲方向和方向之间的等分线定向散射脉冲束(PB)到达观察者的角度。对于反问题,通过对散射场加窗并反向传播所得的PB来逆转此过程,以形成散射域中任何选定区域的局部图像。散射单元的相空间特征与单元中介质的Radon变换有关,因此可以通过Radon反演来恢复局部轮廓函数。包括说明性的数值示例。还讨论了通过入射PB激发和散射场的PB后处理实现的最终定位。

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