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Application of List Mode Image Reconstruction to Fine DOI-PET Scanner Using Position-Sensitive CdTe Semiconductor Detector Unit

机译:利用位置敏感CDTE半导体检测器单元将列表模式图像重建对Fine Doi-PET扫描仪的应用

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We report the effects of implementing the list mode image reconstruction method (LMR) in a new brain scanner based on positron emission tomography. The benefits of LMR include reduced load in imaging processes and conservation of fine spatial data-sampling, the latter of which may be lost by data binning in histogram mode image reconstruction (II MR). In our project, we aim to build a high-spatial-resolution scanner that employs three-dimensional position-sensitive CdTe semiconductor detector units. We experimentally confirmed that the unit could measure the detected positions of annihilation photons with a position resolution of 1 mm3 full width at half maximum (FWHM). Therefore, the scanner can potentially minimize the parallax-induced decrease in the spatial resolution of off-center positions in the field of view (FOV), thereby providing high resolution throughout the FOV because it obtains accurate depth of interaction (DOI) information at a sampling pitch ~1 mm finer than that of conventional DOI technologies (~4 mm). We simulated the proposed scanner, using the GEANT4 Application for Tomographic Emission. Reconstructed images were obtained by LMR or HMR based on the maximum likelihood-expectation maximization (ML-EM) algorithm. The system matrix for ML-EM reconstruction was calculated by Siddon's ray-driven method to fully exploit accurate detection positions. The spatial resolution at the center of the FOV acquired by LMR is 0.6 mm FWHM, which is superior to that acquired by HMR (1 mm FWHM). We confirmed that the resolutions of both methods are maintained at off-center positions, and the resolutions acquired by LMR at these positions are superior to those acquired by HMR. Furthermore, we simulated Hoffman-brain-phantom imaging to evaluate the image quality of the scanner and LMR in human brain studies.
机译:我们报告了基于正电子发射断层扫描的新大脑扫描仪在新的脑扫描仪中实现了列表模式图像重建方法(LMR)的影响。 LMR的益处包括减少成像过程和细小空间数据采样的守恒的负载,其可以通过直方图模式图像重建(II MR)中的数据分布来丢失。在我们的项目中,我们的目标是建立一种采用三维位置敏感CDTE半导体探测器单元的高空间分辨率扫描仪。我们通过实验证实了该单元可以测量湮灭光子的检测位置,其位置分辨率为1mm3全宽,在半部最大(fwhm)。因此,扫描仪可能最小化视野(FOV)中偏离中心位置的空间分辨率的视差引起的降低,从而在整个FOV中提供高分辨率,因为它在A处获得精确的交互次数(DOI)信息采样间距比传统的DOI技术(〜4毫米)更精细地〜1毫米。我们模拟了所提出的扫描仪,使用Geant4应用程序进行断层发射。基于最大似然预期最大化(ML-EM)算法,通过LMR或HMR获得重建的图像。 ML-EM重建的系统矩阵由Siddon的射线驱动方法计算,以完全利用精确的检测位置。通过LMR获取的FOV中心的空间分辨率为0.6mm FWHM,其优于由HMR(1mm FWHM)获得的。我们确认两种方法的分辨率保持在偏离中心位置,并在这些职位上通过LMR获得的决议优于HMR收购的决议。此外,我们模拟了Hoffman-Brain-Phantom成像来评估人脑研究中扫描仪和LMR的图像质量。

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