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Kernel-Based Reconstruction of C-11-Hydroxyephedrine Cardiac PET Images of the Sympathetic Nervous System

机译:基于核的C-11-羟基羟胺心脏宠物宠物宠物图像的交感神经系统的重构

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Image reconstruction for positron emission tomography (PET) can be challenging and the resulting image typically has high noise. The kernel-based reconstruction method [1], incorporates prior anatomic information in the reconstruction algorithm to reduce noise while preserving resolution. Prior information is incorporated in the reconstruction algorithm by means of spatial kernels originally used in machine learning. In this paper, the kernel-based method is used to reconstruct PET images of sympathetic innervation in the heart. The resulting images are compared with standard Ordered Subset Expectation Maximization (OSEM) reconstructed images qualitatively and quantitatively using data from 6 human subjects. The kernel-based method demonstrated superior SNR with preserved contrast and accuracy compared to OSEM.
机译:正电子发射断层扫描(PET)的图像重建可能具有挑战性,并且所得到的图像通常具有高噪声。基于内核的重建方法[1],包括在重建算法中的先前解剖信息,以减少噪声,同时保持分辨率。通过最初用于机器学习的空间内核,在重建算法中并入了先前的信息。在本文中,基于内核的方法用于重建心脏中的交感神经中的PET图像。将得到的图像与标准有序的子集预期最大化(OSEM)与定性和定量使用来自6人受试者的数据进行定性和定量的图像。基于内核的方法展示了与OSEM相比保存的对比度和准确性的优质SNR。

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