LOR-based reconstruction for super-resolved 3D PET image

I. Ahn, Jihye Kim, W. H. Nam, Yongjin Chang, J. Ra
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引用次数: 1

Abstract

PET images usually suffer from low spatial resolution due to positron range, photon non-collinearity, scatters inside scintillating crystals, finite dimension of crystals, and so on. To improve the spatial resolution based on wobble scanning, we previously proposed a sinogram-based super-resolution (SR) algorithm based on a space-variant blur matrix. However, the algorithm may cause unwanted resolution loss due to an inevitable interpolation process for preparing even-spaced sinograms. In this paper, we propose a novel and efficient one-step line of response (LOR) based SR framework for 3D PET images. In the framework, we efficiently determine a large number of space-variant PSFs in an image space by using the scanner symmetries and the proposed PSF interpolation scheme based on non-rigid registration. We then obtain a HR image via one-step super-resolved 3D PET image reconstruction with the determined PSFs. Furthermore, we reduce the computational time of GPU-based reconstruction by introducing a parallel-friendly cone-beam based LOR system matrix. The proposed framework provides noticeable improvement on the spatial resolution of PET images with a considerable reduction of computational time.
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基于lr的超分辨三维PET图像重建
由于正电子范围、光子非共线性、闪烁晶体内部散射、晶体尺寸有限等原因,PET图像通常存在空间分辨率低的问题。为了提高基于摆动扫描的空间分辨率,我们提出了一种基于空间变模糊矩阵的图像超分辨率(SR)算法。然而,该算法可能会造成不必要的分辨率损失,由于一个不可避免的插值过程,以准备均匀间隔的正弦图。在本文中,我们提出了一种新颖高效的基于一步响应线(LOR)的三维PET图像SR框架。在该框架中,我们利用扫描器对称性和提出的基于非刚性配准的PSF插值方案,有效地确定了图像空间中的大量空间变PSF。然后,我们通过一步超分辨3D PET图像重建获得HR图像。此外,我们还引入了一种并行友好的锥束LOR系统矩阵,从而减少了基于gpu的重构的计算时间。该框架显著提高了PET图像的空间分辨率,大大减少了计算时间。
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