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列表模式似然性:二维正电子发射断层扫描中展示的期望最大化算法与图像质量估计

List-mode likelihood: EM algorithm and image quality estimation demonstrated on 2-D PET.

作者信息

Parra L, Barrett H H

机构信息

Imaging and Visualization, Siemens Corporate Research, Princeton, NJ 08540, USA.

出版信息

IEEE Trans Med Imaging. 1998 Apr;17(2):228-35. doi: 10.1109/42.700734.

Abstract

Using a theory of list-mode maximum-likelihood (ML) source reconstruction presented recently by Barrett et al., this paper formulates a corresponding expectation-maximization (EM) algorithm, as well as a method for estimating noise properties at the ML estimate. List-mode ML is of interest in cases where the dimensionality of the measurement space impedes a binning of the measurement data. It can be advantageous in cases where a better forward model can be obtained by including more measurement coordinates provided by a given detector. Different figures of merit for the detector performance can be computed from the Fisher information matrix (FIM). This paper uses the observed FIM, which requires a single data set, thus, avoiding costly ensemble statistics. The proposed techniques are demonstrated for an idealized two-dimensional (2-D) positron emission tomography (PET) [2-D PET] detector. We compute from simulation data the improved image quality obtained by including the time of flight of the coincident quanta.

摘要

利用巴雷特等人最近提出的列表模式最大似然(ML)源重建理论,本文制定了相应的期望最大化(EM)算法,以及一种在ML估计中估计噪声特性的方法。列表模式ML在测量空间维度阻碍测量数据分箱的情况下很有意义。在通过包含给定探测器提供的更多测量坐标可以获得更好的正向模型的情况下,它可能具有优势。探测器性能的不同品质因数可以从费舍尔信息矩阵(FIM)计算得出。本文使用观测到的FIM,这只需要一个数据集,从而避免了代价高昂的总体统计。所提出的技术在理想化的二维(2-D)正电子发射断层扫描(PET)[2-D PET]探测器上得到了验证。我们从模拟数据中计算出通过包含符合量子的飞行时间而获得的图像质量提升。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d028/2969844/7772f06d3754/nihms235892f1.jpg

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