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Computer-Aided Detection of Polyps in CT Colonography Using Logistic Regression

机译:使用Logistic回归的CT结肠造影术中息肉的计算机辅助检测

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摘要

We present a computer-aided detection (CAD) system for computed tomography colonography that orders the polyps according to clinical relevance. TheCADsystem consists of two steps: candidate detection and supervised classification. The characteristics of the detection step lead to specific choices for the classification system. The candidates are ordered by a linear logistic classifier (logistic regression) based on only three features: the protrusion of the colon wall, the mean internal intensity, and a feature to discard detections on the rectal enema tube. This classifier can cope with a small number of polyps available for training, a large imbalance between polyps and non-polyp candidates, a truncated feature space, unbalanced and unknown misclassification costs, and an exponential distribution with respect to candidate size in feature space. Our CAD system was evaluated with data sets from four different medical centers. For polyps larger than or equal to 6mmwe achieved sensitivities of respectively 95%, 85%, 85%, and 100% with 5, 4, 5, and 6 false positives per scan over 86, 48, 141, and 32 patients. A cross-center evaluation in which the system is trained and tested with data from different sources showed that the trained CAD system generalizes to data from different medical centers and with different patient preparations. This is essential to application in large-scale screening for colorectal polyps.
机译:我们提出了一种计算机辅助检测(CAD)系统,用于计算机断层扫描结肠造影,可根据临床相关性对息肉进行排序。 CAD系统包括两个步骤:候选人检测和监督分类。检测步骤的特征导致对分类系统进行特定选择。通过线性逻辑分类器(逻辑回归)仅基于以下三个特征对候选者进行排序:结肠壁的突出,平均内部强度以及丢弃直肠灌肠管上的检测结果的特征。该分类器可以处理可用于训练的少量息肉,息肉和非息肉候选物之间的巨大不平衡,特征空间被截断,不平衡和未知的误分类成本以及相对于特征空间中候选物大小的指数分布。我们的CAD系统使用来自四个不同医疗中心的数据集进行了评估。对于大于或等于6mm的息肉,在86、48、141和32位患者中,每次扫描分别有5、4、5和6个假阳性,灵敏度分别为95%,85%,85%和100%。一项跨中心评估(其中使用来自不同来源的数据对系统进行了培训和测试)表明,受过培训的CAD系统可以概括为来自不同医疗中心和不同患者准备的数据。这对于大范围筛查结肠息肉至关重要。

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