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Reducing 4D CT artifacts using optimized sorting based on anatomic similarity.

机译:使用基于解剖相似性的优化排序减少4D CT伪影。

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PURPOSE: Four-dimensional (4D) computed tomography (CT) has been widely used as a tool to characterize respiratory motion in radiotherapy. The two most commonly used 4D CT algorithms sort images by the associated respiratory phase or displacement into a predefined number of bins, and are prone to image artifacts at transitions between bed positions. The purpose of this work is to demonstrate a method of reducing motion artifacts in 4D CT by incorporating anatomic similarity into phase or displacement based sorting protocols. METHODS: Ten patient datasets were retrospectively sorted using both the displacement and phase based sorting algorithms. Conventional sorting methods allow selection of only the nearest-neighbor image in time or displacement within each bin. In our method, for each bed position either the displacement or the phase defines the center of a bin range about which several candidate images are selected. The two dimensional correlation coefficients between slices bordering the interface between adjacent couch positions are then calculated for all candidate pairings. Two slices have a high correlation if they are anatomically similar. Candidates from each bin are then selected to maximize the slice correlation over the entire data set using the Dijkstra's shortest path algorithm. To assess the reduction of artifacts, two thoracic radiation oncologists independently compared the resorted 4D datasets pairwise with conventionally sorted datasets, blinded to the sorting method, to choose which had the least motion artifacts. Agreement between reviewers was evaluated using the weighted kappa score. RESULTS: Anatomically based image selection resulted in 4D CT datasets with significantly reduced motion artifacts with both displacement (P = 0.0063) and phase sorting (P = 0.00022). There was good agreement between the two reviewers, with complete agreement 34 times and complete disagreement 6 times. CONCLUSIONS: Optimized sorting using anatomic similarity significantly reduces 4D CT motion artifacts compared to conventional phase or displacement based sorting. This improved sorting algorithm is a straightforward extension of the two most common 4D CT sorting algorithms.
机译:目的:二维(4D)计算机断层扫描(CT)已被广泛用作表征放射治疗中呼吸运动的工具。两种最常用的4D CT算法按相关的呼吸相位或位移将图像分类到预定义数量的箱中,并且在床位之间的过渡处容易出现图像伪影。这项工作的目的是演示一种通过将解剖学相似度纳入基于相位或位移的排序协议中来减少4D CT中运动伪影的方法。方法:使用基于位移和阶段的排序算法对10个患者数据集进行回顾性排序。常规的分类方法仅允许在时间上或每个箱内的位移中选择最近的图像。在我们的方法中,对于每个床位,位移或相位都定义了bin范围的中心,围绕该bin范围选择了几个候选图像。然后为所有候选配对计算与相邻床位置之间的界面接壤的切片之间的二维相关系数。如果两个切片在解剖学上相似,则它们具有很高的相关性。然后使用Dijkstra的最短路径算法选择每个分箱中的候选对象,以使整个数据集的切片相关性最大化。为了评估伪影的减少,两名胸部放射肿瘤学家独立地将度假村的4D数据集与常规分类的数据集成对进行比较,而对分类方法不了解,以选择运动伪影最少的数据集。评估者之间的协议使用加权kappa评分进行评估。结果:基于解剖的图像选择导致4D CT数据集的位移(P = 0.0063)和相位排序(P = 0.00022)的运动伪影大大减少。两位审稿人之间达成了良好的协议,完全同意34次,完全不同意6次。结论:与传统的基于相位或位移的分类相比,使用解剖结构相似性进行的优化分类显着减少了4D CT运动伪影。这种改进的排序算法是两种最常见的4D CT排序算法的直接扩展。

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