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静态编码照明策略用于低剂量 X 射线物质分解。

Static coded illumination strategies for low-dose x-ray material decomposition.

出版信息

Appl Opt. 2022 Feb 20;61(6):C107-C115. doi: 10.1364/AO.446104.

Abstract

Static coded aperture x-ray tomography was introduced recently where a static illumination pattern is used to interrogate an object with a low radiation dose, from which an accurate 3D reconstruction of the object can be attained computationally. Rather than continuously switching the pattern of illumination with each view angle, as traditionally done, static code computed tomography (CT) places a single pattern for all views. The advantages are many, including the feasibility of practical implementation. This paper generalizes this powerful framework to develop single-scan dual-energy coded aperture spectral tomography that enables material characterization at a significantly reduced exposure level. Two sensing strategies are explored: rapid kV switching with a single-static block/unblock coded aperture, and coded apertures with non-uniform thickness. Both systems rely on coded illumination with a plurality of x-ray spectra created by kV switching or 3D coded apertures. The structured x-ray illumination is projected through the objects of interest and measured with standard x-ray energy integrating detectors. Then, based on the tensor representation of projection data, we develop an algorithm to estimate a full set of synthesized measurements that can be used with standard reconstruction algorithms to accurately recover the object in each energy channel. Simulation and experimental results demonstrate the effectiveness of the proposed cost-effective solution to attain material characterization in low-dose dual-energy CT.

摘要

静态编码孔径 X 射线层析成像技术最近被引入,其中使用静态照明模式以低辐射剂量来探测物体,从而可以通过计算获得物体的精确 3D 重建。与传统方法中每个视角都连续切换照明模式不同,静态编码计算机断层扫描(CT)为所有视角放置一个单一的模式。其优点很多,包括实际实施的可行性。本文将该强大的框架推广到单扫描双能编码孔径光谱层析成像中,从而能够以显著降低的曝光水平进行材料特性分析。探索了两种传感策略:使用单个静态块/阻塞编码孔径进行快速千伏切换,以及使用非均匀厚度的编码孔径。这两个系统都依赖于编码照明,通过千伏切换或 3D 编码孔径创建多个 X 射线光谱。结构化 X 射线照明通过感兴趣的物体投射,并使用标准 X 射线能量积分探测器进行测量。然后,基于投影数据的张量表示,我们开发了一种算法来估计一组完整的合成测量值,这些值可以与标准重建算法一起使用,以准确恢复每个能量通道中的物体。模拟和实验结果证明了这种经济高效的解决方案在低剂量双能 CT 中进行材料特性分析的有效性。

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