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首页> 外文期刊>Medical Physics >Automated volume analysis of head and neck lesions on CT scans using 3D level set segmentation.
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Automated volume analysis of head and neck lesions on CT scans using 3D level set segmentation.

机译:使用3D水平集分割在CT扫描上自动进行头颈部病变的体积分析。

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摘要

The authors have developed a semiautomatic system for segmentation of a diverse set of lesions in head and neck CT scans. The system takes as input an approximate bounding box, and uses a multistage level set to perform the final segmentation. A data set consisting of 69 lesions marked on 33 scans from 23 patients was used to evaluate the performance of the system. The contours from automatic segmentation were compared to both 2D and 3D gold standard contours manually drawn by three experienced radiologists. Three performance metric measures were used for the comparison. In addition, a radiologist provided quality ratings on a 1 to 10 scale for all of the automatic segmentations. For this pilot study, the authors observed that the differences between the automatic and gold standard contours were larger than the interobserver differences. However, the system performed comparably to the radiologists, achieving an average area intersection ratio of 85.4% compared to an average of 91.2% between two radiologists. The average absolute area error was 21.1% compared to 10.8%, and the average 2D distance was 1.38 mm compared to 0.84 mm between the radiologists. In addition, the quality rating data showed that, despite the very lax assumptions made on the lesion characteristics in designing the system, the automatic contours approximated many of the lesions very well.
机译:作者已经开发出一种半自动系统,用于分割头颈CT扫描中的多种病变。该系统将近似边界框作为输入,并使用多级水平集执行最终分割。由23位患者的33次扫描中标记的69个病变组成的数据集用于评估系统的性能。将自动分割的轮廓与由三位经验丰富的放射科医生手动绘制的2D和3D金标准轮廓进行了比较。比较中使用了三种性能指标度量。另外,放射科医生为所有自动分割提供了1到10级的质量评级。在这项初步研究中,作者观察到自动轮廓线和金标准轮廓之间的差异大于观察者之间的差异。但是,该系统的性能与放射线医生相当,实现了85.4%的平均面积相交率,而两位放射线医生之间的平均相交率为91.2%。放射科医生之间的平均绝对面积误差为21.1%,而同期为10.8%,平均2D距离为1.38 mm,而放射线医生之间为0.84 mm。此外,质量评级数据显示,尽管在设计系统时对病变特征做出了非常松散的假设,但自动轮廓线非常好地近似了许多病变。

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