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Coronary Lumen Segmentation Using Graph Cuts and Robust Kernel Regression

机译:使用图割和稳健核回归进行冠状动脉腔分割

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摘要

This paper presents a novel method for segmenting the coronary lumen in CTA data. The method is based on graph cuts, with edge-weights depending on the intensity of the centerline, and robust kernel regression. A quantitative evaluation in 28 coronary arteries from 12 patients is performed by comparing the semi-automatic segmentations to manual annotations. This evaluation showed that the method was able to segment the coronary arteries with high accuracy, compared to manually annotated segmentations, which is reflected in a Dice coefficient of 0.85 and average symmetric surface distance of 0.22 mm.
机译:本文提出了一种在CTA数据中分割冠状动脉腔的新方法。该方法基于图形切割,边缘权重取决于中心线的强度,并且鲁棒的核回归。通过将半自动分割与手动注释进行比较,对12位患者的28条冠状动脉进行了定量评估。该评估表明,与手动注释的分割相比,该方法能够以较高的精度分割冠状动脉,这反映在0.85的Dice系数和0.22 mm的平均对称表面距离上。

著录项

  • 来源
  • 会议地点 Williamsburg VA(US);Williamsburg VA(US)
  • 作者单位

    Department of Medical Informatics Erasmus MC - University Medical Center Rotterdam Department of RadiologyErasmus MC - University Medical Center Rotterdam;

    Department of RadiologyErasmus MC - University Medical Center Rotterdam Department of Cardiology, Thoraxcenter Erasmus MC - University Medical Center Rotterdam;

    Department of Medical Informatics Erasmus MC - University Medical Center Rotterdam Department of RadiologyErasmus MC - University Medical Center Rotterdam;

    Department of Biomedical Engineering Erasmus MC - University Medical Center Rotterdam;

    Department of RadiologyErasmus MC - University Medical Center Rotterdam Department of Cardiology, Thoraxcenter Erasmus MC - University Medical Center Rotterdam;

    Department of RadiologyErasmus MC - University Medical Center Rotterdam Department o;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物信息、生物控制;
  • 关键词

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