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首页> 外文期刊>Inverse problems and imaging >A REPRODUCING KERNEL HILBERT SPACE FRAMEWORK FOR INVERSE SCATTERING PROBLEMS WITHIN THE BORN APPROXIMATION
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A REPRODUCING KERNEL HILBERT SPACE FRAMEWORK FOR INVERSE SCATTERING PROBLEMS WITHIN THE BORN APPROXIMATION

机译:一种再现内核希尔伯特空间框架,用于出生近似内的逆散射问题

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In this work we develop a new reproducing kernel Hilbert space (RKHS) framework for inverse scattering problems using the Born approximation. We assume we have backscattered data of a field that is dependent on an unknown scattering potential. Our goal is to reconstruct or image this scattering potential. Assuming the scattering potential lies in a RKHS, we find that the imaging equation can be rewritten as the inner product of the desired unknown function with the adjoint of the forward operator applied to the kernel of the imaging operator. We therefore may choose the kernel of the imaging operator such that the adjoint applied to this kernel is precisely the reproducing kernel of the Hilbert space the reflectivity function lies in. In this way we are able to obtain an alternative definition of an ideal image. We will demonstrate this theory using synthetic aperture radar imaging as an example, though there are other applicable imaging modalities i.e. inverse diffraction and diffraction tomography [1, 6]. We choose SAR as it was the motivating application for this work. We will compare the RKHS ideal imaging technique to the standard microlocal analytic ideal image from backprojection theory. Note this method requires a variation of the standard SAR data model with the assumption of a full two dimensional data collection surface as opposed to a one dimensional flight path, however we are able to perform imaging with a single frequency and avoid the approximations made in the backprojection imaging operator derivation.
机译:在这项工作中,我们开发了一种新的再现内核希尔伯特空间(RKHS)框架,用于使用出生的近似散射问题。我们假设我们具有依赖于未知散射潜力的字段的反向散射数据。我们的目标是重建或图像这种散射潜力。假设散射电位在RKHS中呈现,我们发现成像方程可以作为所需未知功能的内在产品被重写为所需未知函数的内部乘积,并且施加向成像操作员的内核的前进操作者的伴随。因此,我们可以选择成像操作员的内核,使得应用于该内核的伴随恰好是Hilbert空间的再现内核,反射率函数在于。以这种方式,我们能够获得理想图像的替代定义。我们将使用合成孔径雷达成像来展示该理论,尽管存在其他适用的成像模态,但是逆衍射和衍射断层扫描[1,6]。我们选择SAR,因为它是这项工作的激励申请。我们将将RKHS理想的成像技术与反投影理论的标准微焦分析理想图像进行比较。注意,该方法需要标准SAR数据模型的变化,假设完整的二维数据收集表面与一维飞行路径相反,但是我们能够执行具有单个频率的成像并避免在中的近似BackProjection成像操作员推导。

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