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Feature-Enhancing Inverse Methods for Limited-View Tomographic Imaging Problems

机译:有限视图层析成像问题的特征增强逆方法

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摘要

In this paper we overview current efforts in the development of inverse methods which directly extract target-relevant features from a limited data set. Such tomographic imaging problems arise in a wide range of fields making use of a number of different sensing modalities. Drawing these problem areas together is the similarity in the underlying physics governing the relationship between that which is sought and the data collected by the sensors. After presenting this physical model, we explore its use in two classes of feature-based inverse methods. Microlocal techniques are shown to provide a natural mathematical framework for processing synthetic aperture radar data in a manner that recovers the edges in the resulting image. For problems of diffusive imaging, we describe our recent efforts in parametric, shape-based techniques for directly estimating the geometric structure of an anomalous region located against a perhaps partially-known background.
机译:在本文中,我们概述了目前在逆方法开发中的工作,这些方法可以从有限的数据集中直接提取与目标相关的特征。利用许多不同的传感方式,这种层析成像问题出现在广泛的领域中。将这些问题区域汇总在一起是控制要寻找的问题和传感器收集的数据之间关系的基础物理学的相似之处。介绍完此物理模型后,我们将探讨其在两类基于特征的逆方法中的使用。示出了微局部技术为恢复合成图像中的边缘提供了一种自然的数学框架,用于处理合成孔径雷达数据。对于漫射成像问题,我们描述了我们最近在基于形状的参数化技术中的工作,这些技术用于直接估计可能是部分已知的背景下的异常区域的几何结构。

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