Motion estimation and correction in SPECT, PET and CT

被引:41
作者
Kyme, Andre Z. [1 ,4 ]
Fulton, Roger R. [2 ,3 ,4 ]
机构
[1] Univ Sydney, Sch Biomed Engn, Sydney, NSW, Australia
[2] Univ Sydney, Sydney Sch Hlth Sci, Sydney, NSW, Australia
[3] Western Sydney Local Hlth Dist, Sydney, NSW, Australia
[4] Univ Sydney, Brain & Mind Ctr, Sydney, NSW, Australia
关键词
motion estimation; motion tracking; motion correction; motion compensation; SPECT; PET and CT; POSITRON-EMISSION-TOMOGRAPHY; CONE-BEAM CT; RESPIRATORY-GATED PET/CT; FILTERED-BACKPROJECTION ALGORITHM; VISUAL-TRACKING SYSTEM; RIGID-BODY MOTION; ANIMAL BRAIN PET; PATIENT-MOTION; HEAD MOTION; IMAGE-RECONSTRUCTION;
D O I
10.1088/1361-6560/ac093b
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Patient motion impacts single photon emission computed tomography (SPECT), positron emission tomography (PET) and x-ray computed tomography (CT) by giving rise to projection data inconsistencies that can manifest as reconstruction artifacts, thereby degrading image quality and compromising accurate image interpretation and quantification. Methods to estimate and correct for patient motion in SPECT, PET and CT have attracted considerable research effort over several decades. The aims of this effort have been two-fold: to estimate relevant motion fields characterizing the various forms of voluntary and involuntary motion; and to apply these motion fields within a modified reconstruction framework to obtain motion-corrected images. The aims of this review are to outline the motion problem in medical imaging and to critically review published methods for estimating and correcting for the relevant motion fields in clinical and preclinical SPECT, PET and CT. Despite many similarities in how motion is handled between these modalities, utility and applications vary based on differences in temporal and spatial resolution. Technical feasibility has been demonstrated in each modality for both rigid and non-rigid motion but clinical feasibility remains an important target. There is considerable scope for further developments in motion estimation and correction, and particularly in data-driven methods that will aid clinical utility. State-of-the-art deep learning methods may have a unique role to play in this context.
引用
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页数:39
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