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Fast Groupwise 4D Deformable Image Registration for Irregular Breathing Motion Estimation

机译:用于不规则呼吸运动估计的快速成组4D变形图像配准

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Tumor heterogeneity can be assessed quantitatively by analyzing dynamic contrast-enhanced imaging modalities potentially leading to improvement in the diagnosis and treatment of cancer, for example of the lung. However, the acquisition of standard lung sequences is often compromised by irregular breathing motion artefacts, resulting in unsystematic errors when estimating tissue perfusion parameters. In this work, we illustrate implicit deformable image registration that integrates the Demons algorithm using the local correlation coefficient as a similarity measure, and locally adaptive regularization that enables incorporation of both spatial sliding motions and irregular temporal motion patterns. We also propose a practical numerical approximation of the regularization model to improve both computational time and registration accuracy, which are important when analyzing long clinical sequences. Our quantitative analysis of 4D lung Computed Tomography and Computed Tomography Perfusion scans from clinical lung trial shows significant improvement over state-of-the-art pairwise registration approaches.
机译:肿瘤异质性可以通过分析动态对比增强的成像方式进行定量评估,这可能会导致癌症(例如肺癌)的诊断和治疗得到改善。但是,不规则的呼吸运动伪影通常会损害标准肺序列的采集,从而在估计组织灌注参数时导致非系统性错误。在这项工作中,我们说明了隐式可变形图像配准,该配准结合了使用局部相关系数作为相似性度量的恶魔算法,并实现了将空间滑动运动和不规则时间运动模式结合在一起的局部自适应正则化。我们还提出了一种实用的正则化模型数值逼近方法,以提高计算时间和配准精度,这在分析较长的临床序列时很重要。我们对来自临床肺试验的4D肺部计算机断层扫描和计算机断层扫描灌注扫描的定量分析显示,与最新的成对注册方法相比,有了显着的改进。

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