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Direction-Dependent Regularization for Improved Estimation of Liver and Lung Motion in 4D Image Data

机译:方向相关的正则化以改进4D图像数据中肝和肺运动的估计

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The estimation of respiratory motion is a fundamental requisite for many applications in the field of 4D medical imaging, for example for radiotherapy of thoracic and abdominal tumors. It is usually done using non-linear registration of time frames of the sequence without further modelling of physiological motion properties. In this context, the accurate calculation of liver und lung motion is especially challenging because the organs are slipping along the surrounding tissue (i.e. the rib cage) during the respiratory cycle, which leads to discontinuities in the motion field. Without incorporating this specific physiological characteristic, common smoothing mechanisms cause an incorrect estimation along the object borders.In this paper, we present an extended diffusion-based model for incorporating physiological knowledge in image registration. By decoupling normal- and tangential-directed smoothing, we are able to estimate slipping motion at the organ borders while preventing gaps and ensuring smooth motion fields inside.We evaluate our model for the estimation of lung and liver motion on the basis of publicly accessible 4D CT and 4D MRI data. The results show a considerable increase of registration accuracy with respect to the target registration error and a more plausible motion estimation.
机译:呼吸运动的估计是4D医学成像领域中许多应用(例如,胸部和腹部肿瘤的放射治疗)的基本要求。通常使用序列时间范围的非线性配准来完成,而无需对生理运动特性进行进一步建模。在这种情况下,肝脏和肺部运动的准确计算尤其具有挑战性,因为在呼吸周期中器官沿着周围组织(即肋骨保持架)滑动,从而导致运动场不连续。如果没有合并这种特定的生理特征,则常见的平滑机制会导致沿对象边界的错误估计。 在本文中,我们提出了一种扩展的基于扩散的模型,该模型将生理知识纳入图像配准。通过解耦法向和切向定向的平滑,我们能够估计器官边界处的滑动运动,同时防止间隙并确保内部的平滑运动场。 我们基于可公开访问的4D CT和4D MRI数据评估我们的模型,以评估肺和肝的运动。结果表明,相对于目标配准误差,配准精度有了显着提高,并且运动估计更加合理。

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