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首页> 外文期刊>Medical image analysis >Level set based cerebral vasculature segmentation and diameter quantification in CT angiography.
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Level set based cerebral vasculature segmentation and diameter quantification in CT angiography.

机译:在CT血管造影中基于水平集的脑血管分割和直径量化。

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摘要

A level set based method is presented for cerebral vascular tree segmentation from computed tomography angiography (CTA) data. The method starts with bone masking by registering a contrast enhanced scan with a low-dose mask scan in which the bone has been segmented. Then an estimate of the background and vessel intensity distributions is made based on the intensity histogram which is used to steer the level set to capture the vessel boundaries. The relevant parameters of the level set evolution are optimized using a training set. The method is validated by a diameter quantification study which is carried out on phantom data, representing ground truth, and 10 patient data sets. The results are compared to manually obtained measurements by two expert observers. In the phantom study, the method achieves similar accuracy as the observers, but is unbiased whereas the observers are biased, i.e., the results are 0.00+/-0.23 vs. -0.32+/-0.23 mm. Also, the method's reproducibility is slightly better than the inter-and intra-observer variability. In the patient study, the method is in agreement with the observers and also, the method's reproducibility -0.04+/-0.17 mm is similar to the inter-observer variability 0.06+/-0.17 mm. Since the method achieves comparable accuracy and reproducibility as the observers, and since the method achieves better performance than the observers with respect to ground truth, we conclude that the level set based vessel segmentation is a promising method for automated and accurate CTA diameter quantification.
机译:提出了一种基于水平集的方法,用于从计算机断层扫描血管造影(CTA)数据进行脑血管树分割。该方法通过将对比增强扫描与低剂量的蒙版扫描配准,其中骨骼已被分割,从而开始了骨蒙版。然后,基于强度直方图对背景强度和血管强度分布进行估计,该强度直方图用于控制设置的水平以捕获血管边界。使用训练集优化水平集演化的相关参数。该方法通过直径量化研究进行了验证,该研究是对代表地面真实情况的幻像数据和10个患者数据集进行的。将结果与两名专业观察员手动获得的测量结果进行比较。在幻像研究中,该方法达到了与观察者相似的准确性,但是没有偏见,而观察者有偏见,即结果为0.00 +/- 0.23毫米-.0.32 +/- 0.23毫米。而且,该方法的重现性略好于观察者之间和观察者内部的变异性。在患者研究中,该方法与观察者一致,并且该方法的可重复性-0.04 +/- 0.17 mm与观察者之间的差异0.06 +/- 0.17 mm相似。由于该方法达到了与观测者相当的准确性和可重复性,并且由于该方法在地面真相方面比观测者具有更好的性能,因此我们得出结论,基于水平集的血管分割是一种有希望的自动且准确的CTA直径定量方法。

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