使用NAC导出变形场的单一衰减图校正PET/CT呼吸运动

A. C. Whitehead, A. Biguri, N. Efthimiou, K. Su, S. Wollenweber, C. Stearns, B. Hutton, J. McClelland, K. Thielemans
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引用次数: 1

摘要

呼吸运动校正在正电子发射断层扫描中是有益的。存在不同的策略来处理与运动校正相结合的衰减校正。在临床实践中,通常可以获得单一的衰减图,该衰减图是由一种呼吸状态的计算机断层扫描得出的。这可能会在运动校正算法中引入不必要的偏差(通过不对齐的解剖)。本文建立在先前的工作基础上,该工作表明,如果飞行时间数据可用,则通过使用运动模型,非衰减校正数据适用于运动估计。在这里,通过在迭代过程中加入衰减校正来扩展先前的工作。使用有序子集期望最大化重建非衰减校正体积,并将其用作运动模型估计的输入。然后将单个衰减图扭曲到体上,使用运动模型对体进行衰减校正,然后进行另一个运动估计和校正周期。为了验证,使用了4维扩展心脏躯干模拟,用于一个床位,视野包括肺和隔膜的底部。通过使用轮廓和标准化摄取值分析,对相同数据的非运动校正重建进行可视化评估所提出方法的输出。结果表明,在考虑衰减变形的情况下,该方法可以对呼吸周期间运动进行运动校正。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PET/CT Respiratory Motion Correction With a Single Attenuation Map Using NAC Derived Deformation Fields
Respiratory motion correction is beneficial in positron emission tomography. Different strategies for handling attenuation correction in conjunction with motion correction exist. In clinical practice, usually a single attenuation map is available, derived from computed tomography in one respiratory state. This can introduce an unwanted bias (through misaligned anatomy) into the motion correction algorithm. This paper builds upon previous work which suggested that non-attenuation corrected data was suitable for motion estimation, through the use of motion models, if time-of-flight data are available. Here, the previous work is expanded upon by incorporating attenuation correction in an iterative process. Non-attenuation corrected volumes are reconstructed using ordered subset expectation maximisation and used as input for motion model estimation. A single attenuation map is then warped to the volumes, using the motion model, the volumes are attenuation corrected, after which another motion estimation and correction cycle is performed. For validation, 4-Dimensional Extended Cardiac Torso simulations are used, for one bed position, with a field of view including the base of the lungs and the diaphragm. The output from the proposed method is evaluated against a non-motion corrected reconstruction of the same data visually, using a profile as well as standardised uptake value analysis. Results indicate that motion correction of inter-respiratory cycle motion is possible with this method, while accounting for attenuation deformation.
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