首页> 外文会议>Visualization, Image-Guided Procedures, and Display pt.1; Progress in Biomedical Optics and Imaging; vol.6,no.21 >Validation of 3D motion tracking of pulmonary lesions using CT fluoroscopy images for robotically assisted lung biopsy
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Validation of 3D motion tracking of pulmonary lesions using CT fluoroscopy images for robotically assisted lung biopsy

机译:使用CT透视图像对机器人辅助肺活检进行的3D肺部病变运动追踪验证

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摘要

As recently proposed in our previous work, the two-dimensional CT fluoroscopy image series can be used to track the three-dimensional motion of a pulmonary lesion. The assumption is that the lung tissue is locally rigid, so that the realtime CT fluoroscopy image can be combined with a preoperative CT volume to infer the position of the lesion when the lesion is not in the CT fluoroscopy imaging plane. In this paper, we validate the basic properties of our tracking algorithm using a synthetic four-dimensional lung dataset. The motion tracking result is compared to the ground truth of the four-dimensional dataset. The optimal parameter configurations of the algorithm are discussed. The robustness and accuracy of the tracking algorithm are presented. The error analysis shows that the local rigidity error is the principle component of the tracking error. The error increases as the lesion moves away from the image region being registered. Using the synthetic four-dimensional lung data, the average tracking error over a complete respiratory cycle is 0.8 nun for target lesions inside the lung. As a result, the motion tracking algorithm can potentially alleviate the effect of respiratory motion in CT fluoroscopy-guided lung biopsy.
机译:正如我们先前的工作中最近提出的那样,二维CT透视图像序列可用于跟踪肺部病变的三维运动。假设是肺组织是局部刚性的,因此当病变不在CT透视成像平面中时,可以将实时CT透视图像与术前CT体积结合以推断病变的位置。在本文中,我们使用合成的三维肺数据集验证了跟踪算法的基本属性。将运动跟踪结果与四维数据集的基本事实进行比较。讨论了算法的最佳参数配置。提出了跟踪算法的鲁棒性和准确性。误差分析表明,局部刚度误差是跟踪误差的主要组成部分。随着病变远离正在记录的图像区域,错误会增加。使用合成的三维肺部数据,在整个呼吸周期内,肺内目标病变的平均跟踪误差为0.8 nun。因此,运动跟踪算法可以潜在地减轻CT透视引导的肺活检中呼吸运动的影响。

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