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A pattern recognition approach to automated coronary calcium scoring

机译:自动识别冠状动脉钙化评分的模式识别方法

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An automated method for coronary calcification detection is presented. First the heart region is extracted, in which objects potentially representing calcifications are obtained by thresholding. Besides coronary calcifications, the set of objects includes other heart calcifications, bony structures and noise. For each object, features describing its size, shape, position and appearance are computed. Several classifiers and classification strategies are evaluated. Best results are obtained with a specifically designed sequence of kNN classifiers that employ sequential forward feature selection. First obvious non-calcifications are removed, then calcifications are distinguished from non-calcifications and a final classifier discerns coronary calcifications from other cardiac calcifications. In 14 CT scans containing 61 coronary calcifications, 46 (75%) are detected at the expense of on average 0.9 false positive objects per scan.
机译:提出了一种冠状动脉钙化检测的自动化方法。首先提取心脏区域,其中通过阈值化获得可能代表钙化的物体。除了冠状动脉钙化之外,该组对象包括其他心脏钙化,骨骼结构和噪音。对于每个对象,计算描述其尺寸,形状,位置和外观的功能。评估了几种分类器和分类策略。用专门设计的KnN分类器序列采用顺序前向特征选择,获得最佳结果。第一明显的非钙化被移除,然后将钙化与非钙化和最终分类器辨别来自其他心脏钙化的冠状动脉钙化。在14中,含有61个冠状动脉钙化的CT扫描,每次扫描的平均0.9个假阳性对象的费用检测46(75%)。

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