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首页> 外文期刊>Radiological physics and technology >Restoration of lost frequency in OpenPET imaging: Comparison between the method of convex projections and the maximum likelihood expectation maximization method
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Restoration of lost frequency in OpenPET imaging: Comparison between the method of convex projections and the maximum likelihood expectation maximization method

机译:OpenPET成像中丢失频率的恢复:凸投影方法与最大似然期望最大化方法的比较

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We are developing a new PET scanner based on the "OpenPET" geometry, which consists of two detector rings separated by a gap. One item to which attention must be paid is that OpenPET image reconstruction is classified into an incomplete inverse problem, where low-frequency components are truncated. In our previous simulations and experiments, however, the OpenPET imaging was made feasible by application of iterative image reconstruction methods. Therefore, we expect that iterative methods have a restorative effect to compensate for the lost frequency. There are two types of reconstruction methods for improving image quality when data truncation exists: one is the iterative methods such as the maximum-likelihood expectation maximization (ML-EM) and the other is an analytical image reconstruction method followed by the method of convex projections, which has not been employed for the OpenPET. In this study, therefore, we propose a method for applying the latter approach to the OpenPET image reconstruction and compare it with the ML-EM. We found that the proposed analytical method could reduce the occurrence of image artifacts caused by the lost frequency. A similar tendency for this restoration effect was observed in ML-EM image reconstruction where no additional restoration method was applied. Therefore, we concluded that the method of convex projections and the ML-EM had a similar restoration effect to compensate for the lost frequency.
机译:我们正在开发一种基于“ OpenPET”几何形状的新型PET扫描仪,该扫描仪由两个由间隙隔开的检测器环组成。必须注意的一项是OpenPET图像重建被归类为不完整的逆问题,其中低频分量被截断。然而,在我们之前的模拟和实验中,通过应用迭代图像重建方法使OpenPET成像变得可行。因此,我们期望迭代方法具有恢复性的效果,以补偿丢失的频率。存在数据截断时,有两种类型的重建方法可以提高图像质量:一种是迭代方法,例如最大似然期望最大化(ML-EM);另一种是解析图像重建方法,然后是凸投影方法。 ,尚未用于OpenPET。因此,在这项研究中,我们提出了一种将后一种方法应用于OpenPET图像重建的方法,并将其与ML-EM进行比较。我们发现,所提出的分析方法可以减少由频率损失引起的图像伪像的发生。在没有应用其他恢复方法的ML-EM图像重建中,观察到了类似的恢复效果趋势。因此,我们得出的结论是,凸投影方法和ML-EM具有相似的恢复效果,可以补偿丢失的频率。

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