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A Steering Engine: Learning 3-D Anatomy Orientation Using Regression Forests

机译:指导引擎:使用回归森林学习3D解剖学方向

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Anatomical structures have intrinsic orientations along one or more directions, e.g., the tangent directions at points along a vessel central-line, the normal direction of an inter-vertebral disc or the base-to-apex direction of the heart. Although auto-detection of anatomy orientation is critical to various clinical applications, it is much less explored compared to its peer, "auto-detection of anatomy location". In this paper, we propose a novel and generic algorithm, named as "steering engine", to detect anatomy orientation in a robust and efficient way. Our work is distinguished by three main contributions. (1) Regression-based colatitude angle predictor: we use regression forests to model the highly non-linear mapping between appearance features and anatomy colatitude. (2) Iterative colatitude prediction scheme: we propose an algorithm that iteratively queries colatitude until longitude ambiguity is eliminated. (3) Rotation-invariant integral image: we design a spherical coordinates-based integral image from which Haar-like features of any orientation can be calculated efficiently. We validate our method on three diverse applications (different imaging modalities and organ systems), i.e., vertebral column tracing in CT, aorta tracing in CT and spinal cord tracing in MRI. In all applications (tested on a total of 400 scans), our method achieves a success rate above 90%. Experimental results suggest our method is fast, robust and accurate.
机译:解剖结构具有沿一个或多个方向(例如,沿着血管中心线的点,椎间盘的法线方向或心脏的基尖方向)上的切线方向的固有取向。尽管解剖结构方向的自动检测对于各种临床应用至关重要,但与同行的“解剖结构位置的自动检测”相比,它的探索要少得多。在本文中,我们提出了一种新颖且通用的算法,称为“转向引擎”,以一种鲁棒且有效的方式检测解剖学方向。我们的工作以三个主要方面而著称。 (1)基于回归的后倾角预测器:我们使用回归森林对外观特征与解剖学后倾角之间的高度非线性映射进行建模。 (2)迭代式兴趣度预测方案:我们提出了一种迭代式查询式兴趣度的算法,直到消除了经度歧义。 (3)旋转不变积分图像:我们设计了一个基于球坐标的积分图像,从中可以有效地计算出任何方向的类似Haar的特征。我们在三种不同的应用(不同的成像方式和器官系统)上验证了我们的方法,即CT中的椎骨示踪,CT中的主动脉示踪和MRI中的脊髓示踪。在所有应用程序中(总共进行了400次扫描测试),我们的方法均获得了90%以上的成功率。实验结果表明我们的方法是快速,可靠和准确的。

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