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Spectral partitioning in diffraction tomography

机译:衍射层析成像中的光谱划分

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Abstract: The scattering mechanism of diffraction tomography is described by the integral form of the Helmholtz equation. The goal of diffraction tomography is to invert this equation in order to reconstruct the object function from the measured scattered fields. During the forward propagation process, the spatial spectrum of the object under investigation is 'smeared,' by a convolution in the spectral domain, across the propagating and evanescent regions of the received field. Hence, care must be taken in performing the reconstruct, as the object's spectral information has been moved into regions where it may be considered to be noise rather than useful information. This will reduce the quality and resolution of the reconstruction. We show how the object's spectrum can be partitioned into resolvable and non-resolvable parts based upon the cutoff between the propagating and evanescent fields. Operating under the Born approximation, we develop a beam- forming on transmit approach to direct the energy into either the propagating or evanescent parts of the spectrum. In this manner, we may individually interrogate the propagating and evanescent regions of the object spectrum. !7
机译:摘要:用Helmholtz方程的积分形式描述了衍射层析成像的散射机理。衍射层析成像的目的是将这个方程式求逆,以便从测得的散射场中重建目标函数。在前向传播过程中,被调查对象的空间光谱在接收域的传播区域和消逝区域中通过光谱域中的卷积而被“涂抹”。因此,在执行重建时必须小心,因为对象的光谱信息已移入可能被认为是噪声而不是有用信息的区域。这将降低重建的质量和分辨率。我们展示了如何根据传播场和渐逝场之间的截止点将对象的光谱分为可分辨部分和不可分辨部分。我们在Born近似下进行操作,我们开发了一种在发射过程中进行波束成形的方法,以将能量引导到频谱的传播或e逝部分。以这种方式,我们可以单独询问对象光谱的传播区域和消逝区域。 !7

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