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An optical flow based method for improved reconstruction of 4D CT data sets acquired during free breathing.

机译:一种基于光流的方法,用于改善自由呼吸期间获取的4D CT数据集的重建。

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Respiratory motion degrades anatomic position reproducibility and leads to issues affecting image acquisition, treatment planning, and radiation delivery. Four-dimensional (4D) computer tomography (CT) image acquisition can be used to measure the impact of organ motion and to explicitly account for respiratory motion during treatment planning and radiation delivery. Modern CT scanners can only scan a limited region of the body simultaneously and patients have to be scanned in segments consisting of multiple slices. A respiratory signal (spirometer signal or surface tracking) is used to reconstruct a 4D data set by sorting the CT scans according to the couch position and signal coherence with predefined respiratory phases. But artifacts can occur if there are no acquired data segments for exactly the same respiratory state for all couch positions. These artifacts are caused by device-dependent limitations of gantry rotation, image reconstruction times and by the variability of the patient's respiratory pattern. In this paper an optical flow based method for improved reconstruction of 4D CT data sets from multislice CT scans is presented. The optical flow between scans at neighboring respiratory states is estimated by a non-linear registration method. The calculated velocity field is then used to reconstruct a 4D CT data set by interpolating data at exactly the predefined respiratory phase. Our reconstruction method is compared with the usually used reconstruction based on amplitude sorting. The procedures described were applied to reconstruct 4D CT data sets for four cancer patients and a qualitative and quantitative evaluation of the optical flow based reconstruction method was performed. Evaluation results show a relevant reduction of reconstruction artifacts by our technique. The reconstructed 4D data sets were used to quantify organ displacements and to visualize the abdominothoracic organ motion.
机译:呼吸运动降低了解剖位置的可重复性,并导致影响图像采集,治疗计划和放射线传输的问题。可以使用四维(4D)计算机断层扫描(CT)图像采集来测量器官运动的影响,并明确说明治疗计划和放射输送过程中的呼吸运动。现代的CT扫描仪只能同时扫描身体的有限区域,并且必须对患者进行多片扫描。呼吸信号(肺活量计信号或表面跟踪)用于通过根据床位和预定义呼吸相位的信号相干性对CT扫描进行排序来重建4D数据集。但是,如果没有针对所有躺椅位置完全相同的呼吸状态的采集数据段,则可能会出现伪影。这些伪影是由与机架有关的设备限制,图像重建时间以及患者呼吸模式的变化引起的。本文提出了一种基于光流的方法,用于从多层CT扫描中改进4D CT数据集的重建。通过非线性配准方法估算相邻呼吸状态下扫描之间的光流。然后,通过在精确的预定义呼吸相位内插数据,将计算出的速度场用于重建4D CT数据集。我们的重建方法与基于幅度排序的常用重建方法进行了比较。所描述的程序被应用于为四名癌症患者重建4D CT数据集,并对基于光流的重建方法进行了定性和定量评估。评估结果表明,通过我们的技术,可以减少重建伪影。重建的4D数据集用于量化器官移位并可视化胸胸器官运动。

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