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Database guided detection of anatomical landmark points in 3D images of the heart

机译:数据库指导的心脏3D图像中解剖学界标点的检测

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Automated landmark detection may prove invaluable in the analysis of real-time three-dimensional (3D) echocardiograms. By detecting 3D anatomical landmark points, the standard anatomical views can be extracted automatically in apically acquired 3D ultrasound images of the left ventricle, for better standardization of visualization and objective diagnosis. Furthermore, the landmarks can serve as an initialization for other analysis methods, such as segmentation. The described algorithm applies landmark detection in perpendicular planes of the 3D dataset. The landmark detection exploits a large database of expert annotated images, using an extensive set of Haar features for fast classification. The detection is performed using two cascades of Adaboost classifiers in a coarse to fine scheme. The method is evaluated by measuring the distance of detected and manually indicated landmark points in 25 patients. The method can detect landmarks accurately in the four-chamber (apex: 7.9±7.1mm, septal mitral valve point: 5.6±2.7mm; lateral mitral valve point: 4.0±2.6mm) and two-chamber view (apex: 7.1±6.7mm, anterior mitral valve point: 5.8±3.5mm, inferior mitral valve point: 4.5±3.1mm). The results compare well to those reported by others.
机译:自动地标检测在实时三维(3D)超声心动图分析中可能被证明是无价的。通过检测3D解剖学界标点,可以自动从顶点获取的左心室3D超声图像中提取标准解剖学视图,以更好地实现可视化和客观诊断的标准化。此外,界标可以用作其他分析方法(例如分段)的初始化。所描述的算法在3D数据集的垂直平面中应用界标检测。地标检测利用广泛的Haar功能集进行快速分类,从而利用专家注释图像的大型数据库。使用从粗到精方案的两个Adaboost分类器级联来执行检测。通过测量25位患者中检测到的和手动指示的界标点的距离来评估该方法。该方法可以在四腔(顶点:7.9±7.1mm,二尖瓣中隔点:5.6±2.7mm;二尖瓣外侧点:4.0±2.6mm)和两腔视图(顶点:7.1±6.7)中准确检测界标。毫米,二尖瓣前瓣点:5.8±3.5mm,二尖瓣下瓣点:4.5±3.1mm。结果与他人报告的结果相当。

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