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Sequential Monte Carlo tracking of the marginal artery by multiple cue fusion and random forest regression

机译:多个提示融合与随机森林回归边缘动脉的顺序蒙特卡罗跟踪

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Given the potential importance of marginal artery localization in automated registration in computed tomography colonography (CC), we have devised a semi-automated method of marginal vessel detection employing sequential Monte Carlo tracking (also known as particle filtering tracking) by multiple cue fusion based on intensity, vesselness, organ detection, and minimum spanning tree information for poorly enhanced vessel segments. We then employed a random forest algorithm for intelligent cue fusion and decision making which achieved high sensitivity and robustness. After applying a vessel pruning procedure to the tracking results, we achieved statistically significantly improved precision compared to a baseline Hessian detection method (2.7% versus 75.2%, p < 0.001). This method also showed statistically significantly improved recall rate compared to a 2-cue baseline method using fewer vessel cues (30.7% versus 67.7%, p < 0.001). These results demonstrate that marginal artery localization on CTC is feasible by combining a discriminative classifier (i.e., random forest) with a sequential Monte Carlo tracking mechanism. In so doing, we present the effective application of an anatomical probability map to vessel pruning as well as a supplementary spatial coordinate system for colonic segmentation and registration when this task has been confounded by colon lumen collapse. Published by Elsevier B.V.
机译:鉴于在计算机断层扫描结肠摄影(CC)中自动登记的边际动脉定位的潜力重要性,我们设计了一种基于多个提示融合的序列蒙特卡罗跟踪(也称为粒子过滤跟踪)的半自动血管检测方法。强度,血管,器官检测和增强血管段差的最小生成树信息。然后,我们采用了一种随机森林算法来实现智能提示融合和决策,实现了高灵敏度和鲁棒性。在将船舶修剪程序应用于跟踪结果后,与基线Hessian检测方法相比,我们实现了统计上显着提高的精确度(2.7%对75.2%,P <0.001)。与使用较少血管提示的2厘米基线法(30.7%对67.7%,P <0.001)相比,该方法还表现出统计学上显着改善的召回速率。这些结果表明,通过将鉴别的分类器(即随机林)与连续的蒙特卡罗跟踪机构组合,CTC上的边缘动脉定位是可行的。在这样做中,我们展示了解剖概率图的有效应用到血管修剪以及用于结肠分割和注册的补充空间坐标系,当该任务被冒号腔崩溃混淆时。 elsevier b.v出版。

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