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Noise characterization of block-iterative reconstruction algorithms. I. Theory

机译:块迭代重建算法的噪声表征。一,理论

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摘要

Researchers have shown increasing interest in block-iterative image reconstruction algorithms due to the computational and modeling advantages they provide. Although their convergence properties have been well documented, little is known about how they behave in the presence of noise. In this work, the authors fully characterize the ensemble statistical properties of the rescaled block-iterative expectation-maximization (RBI-EM) reconstruction algorithm and the rescaled block-iterative simultaneous multiplicative algebraic reconstruction technique (RBI-SMART). Also included in the analysis are the special cases of RBI-EM, maximum-likelihood EM (ML-EM) and ordered-subset EM (OS-EM), and the special case of RBI-SMART, SMART. A theoretical formulation strategy similar to that previously outlined for ML-EM is followed for the RBI methods. The theoretical formulations in this paper rely on one approximation, namely, that the noise in the reconstructed image is small compared to the mean image. In a second paper, the approximation will be justified through Monte Carlo simulations covering a range of noise levels, iteration points, and subset orderings. The ensemble statistical parameters could then be used to evaluate objective measures of image quality.
机译:由于他们提供的计算和建模优势,研究人员对块迭代图像重建算法显示出越来越高的兴趣。尽管已经很好地证明了它们的收敛特性,但是对于它们在有噪声的情况下的行为知之甚少。在这项工作中,作者充分描述了重新缩放的块迭代期望最大化(RBI-EM)重建算法和重新缩放的块迭代同时乘法代数重建技术(RBI-SMART)的整体统计性质。分析中还包括RBI-EM,最大似然EM(ML-EM)和有序子集EM(OS-EM)的特殊情况,以及RBI-SMART,SMART的特殊情况。对于RBI方法,遵循类似于先前针对ML-EM概述的理论制定策略。本文的理论公式依赖于一个近似值,即与平均图像相比,重建图像中的噪声较小。在第二篇论文中,将通过涵盖一系列噪声水平,迭代点和子集排序的蒙特卡洛模拟来证明这种近似是合理的。整体统计参数然后可以用于评估图像质量的客观度量。

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