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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research >Near-field artifacts reduction in coded aperture push-broom Compton scatter imaging
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Near-field artifacts reduction in coded aperture push-broom Compton scatter imaging

机译:编码孔径推扫式康普顿散射成像中的近场伪像减少

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Recently, we have devised a novel method called coded aperture push-broom Compton scatter imaging (CAPCSI) to improve the use of backscattered X-rays. Based on a correlation algorithm, near-field artifacts are obvious in the CAPCSI, although they could be reduced partially by averaging dual acquisitions of a mask and an antimask. In this paper, we introduce a maximum-likelihood expectation-maximization (MLEM) algorithm into the CAPCSI to improve the artifacts without dual acquisitions. First, a theoretical system matrix (SM) and a simulative SM were derived from the generation of near-field artifacts. Then, simulation for ideal sources was carried out to compare different algorithms of the correlation and the MLEM. Further, a CAPCSI prototype was set up to confirm the simulation. Because of the system nonuniformity, an experimental SM was derived in advance by a ray-driven way. Finally, imaging for character phantoms was presented. Preliminary results showed the MLEM performed much better for the point source and could obtain a cleaner background for complex objects than the correlation. In the simulation, the theoretical SM and the simulative SM were no essential difference. However, in the experiment, the experimental SM performed essentially better than the theoretical SM, because it took the near-field effects and the system nonuniformity into a comprehensive consideration. This work will help enhance the application potential of the CAPCSI.
机译:最近,我们设计了一种称为编码孔径推扫式康普顿散射成像(CAPCSI)的新颖方法,以改善对反向散射X射线的使用。基于相关算法,尽管可以通过平均掩膜和反掩膜的双重获取来部分减少近场伪像,但在CAPCSI中很明显。在本文中,我们将最大似然期望最大化(MLEM)算法引入CAPCSI,以改善无双重采集的伪像。首先,从近场伪像的产生中导出了理论系统矩阵(SM)和模拟SM。然后,对理想信号源进行了仿真,以比较相关性和MLEM的不同算法。此外,建立了CAPCSI原型以确认模拟。由于系统的不均匀性,通过射线驱动的方式预先获得了实验性SM。最后,介绍了角色幻影的成像。初步结果表明,与相关性相比,MLEM对于点源的性能要好得多,并且可以为复杂对象获得更清晰的背景。在仿真中,理论SM和仿真SM没有本质区别。但是,在实验中,由于将近场效应和系统不均匀性综合考虑,因此实验SM的性能实质上优于理论SM。这项工作将有助于增强CAPCSI的应用潜力。

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