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Vision 20/20: Magnetic resonance imaging-guided attenuation correction in PET/MRI: Challenges, solutions, and opportunities

机译:视觉20/20:PET / MRI中磁共振成像引导的衰减校正:挑战,解决方案和机遇

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摘要

Attenuation correction is an essential component of the long chain of data correction techniques required to achieve the full potential of quantitative positron emission tomography (PET) imaging. The development of combined PET/magnetic resonance imaging (MRI) systems mandated the widespread interest in developing novel strategies for deriving accurate attenuation maps with the aim to improve the quantitative accuracy of these emerging hybrid imaging systems. The attenuation map in PET/MRI should ideally be derived from anatomical MR images; however, MRI intensities reflect proton density and relaxation time properties of biological tissues rather than their electron density and photon attenuation properties. Therefore, in contrast to PET/computed tomography, there is a lack of standardized global mapping between the intensities of MRI signal and linear attenuation coefficients at 511 keV. Moreover, in standard MRI sequences, bones and lung tissues do not produce measurable signals owing to their low proton density and short transverse relaxation times. MR images are also inevitably subject to artifacts that degrade their quality, thus compromising their applicability for the task of attenuation correction in PET/MRI. MRI-guided attenuation correction strategies can be classified in three broad categories: (i) segmentation-based approaches, (ii) atlas-registration and machine learning methods, and (iii) emission/transmission-based approaches. This paper summarizes past and current state-of-the-art developments and latest advances in PET/MRI attenuation correction. The advantages and drawbacks of each approach for addressing the challenges of MR-based attenuation correction are comprehensively described. The opportunities brought by both MRI and PET imaging modalities for deriving accurate attenuation maps and improving PET quantification will be elaborated. Future prospects and potential clinical applications of these techniques and their integration in commercial systems will also be discussed.
机译:衰减校正是实现定量正电子发射断层扫描(PET)成像的全部潜力所需的数据校正技术的长链中的重要组成部分。 PET /磁共振成像(MRI)组合系统的开发引起了人们的广泛兴趣,即开发新颖的策略以得出精确的衰减图,目的是提高这些新兴的混合成像系统的定量精度。理想情况下,PET / MRI中的衰减图应来自解剖MR图像;但是,MRI强度反映了生物组织的质子密度和弛豫时间特性,而不是其电子密度和光子衰减特性。因此,与PET /计算机断层扫描相比,MRI信号强度与511 keV处的线性衰减系数之间缺乏标准化的全局映射。此外,在标准的MRI序列中,骨骼和肺组织由于质子密度低和横向弛豫时间短而无法产生可测量的信号。 MR图像也不可避免地会受到伪影的影响,从而降低其质量,从而损害其在PET / MRI中进行衰减校正的适用性。 MRI指导的衰减校正策略可分为三大类:(i)基于分段的方法,(ii)地图集注册和机器学习方法以及(iii)基于发射/透射的方法。本文总结了PET / MRI衰减校正的过去和当前的最新发展以及最新进展。全面描述了解决基于MR的衰减校正挑战的每种方法的优缺点。将详细阐述MRI和PET成像方式带来的机会,以得出准确的衰减图并改善PET定量。这些技术的未来前景和潜在的临床应用以及它们在商业系统中的集成也将被讨论。

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