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Spatially variant resolution modelling using redistributed lines-of-response and the image space reconstruction algorithm

机译:使用重新分配的响应线和图像空间重构算法的空间变体分辨率建模

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A spatially variant resolution modelling technique for PET image reconstruction is presented which models the physical processes of the measurement during the iterative reconstruction. This is achieved by redistributing the line-of-response endpoints according to derived probability density functions describing the detector response function and photon acollinearity. When applying this technique it is shown that, to avoid mathematical inconsistencies and reconstruction artefacts, MLEM cannot be used for the reconstruction. The ISRA algorithm, after being adapted to a list-mode based implementation, is used instead since its structure is well-suited to this application. The Redistribution technique is shown to produce superior resolution recovery in off-centre phantom reconstructions than the standard stationary image-space Gaussian convolution approach, and it only requires approximately 35% more computation time.
机译:提出了一种用于PET图像重建的空间变异分辨率建模技术,该技术可在迭代重建过程中对测量的物理过程进行建模。通过根据导出的描述检测器响应函数和光子共线性的概率密度函数重新分配响应线端点,可以实现这一点。当应用该技术时,表明为了避免数学上的不一致和重建伪像,MLEM不能用于重建。由于适应于基于列表模式的实现,因此ISRA算法被改用,因为它的结构非常适合此应用程序。与标准的静止图像空间高斯卷积方法相比,重新分布技术在偏心幻影重建中显示出更高的分辨率恢复,并且仅需要大约35%的计算时间。

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