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A generic geometric calibration method for tomographic imaging systems with flat-panel detectors-A detailed implementation guide

机译:带有平板探测器的层析成像系统的通用几何校准方法-详细实施指南

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Purpose: To present a generic geometric calibration method for tomographic imaging systems with flat-panel detectors in a very detailed manner, in the aim to provide a useful tool to the public domain. Methods: The method is based on a projection matrix which represents a mapping from 3D object coordinate system to 2D projection image plane. The projection matrix can be determined experimentally through the imaging of a phantom of known marker geometry. Accurate implementation was accomplished through direct computation algorithms, including a novel ellipse fitting using singular value decomposition and data normalization. Benefits of the method include: (1) It is capable of being applied to systems of different scan trajectories, source-detector alignments, and detector orientations; (2) projection matrices can be utilized in image reconstructions or in the extraction of explicit geometrical parameters; and (3) the method imposes minimal limits on the design of calibration phantom. C++ programs that calculate projection matrices and extract geometric parameters from them are also provided. For validation, the calibration method was applied to the computer simulation of a cone-beam CT system, as well as to three tomosynthesis prototypes of different source-detector movement patterns: Source and detector rotating synchronizedly; source rotating and detector wobbling; and source rotating and detector staying stationary. Results: Projection matrices were computed on a view by view basis. Geometric parameters extracted from projection matrices were consistent with actual settings. Images were reconstructed by directly using projection matrices, and were compared to virtual Shepp-Logan image for CT simulation and to central projection images of CIRS breast phantoms for tomosynthesis prototypes. They showed no obvious distortion or blurring, indicating the high quality of geometric calibration results. When the computed central ray offsets were perturbed with Gaussian noises of 1 pixel standard deviation, the reconstructed image showed apparent distortion, which further demonstrated the accuracy of the geometric calibration method. Conclusions: The method is suitable for tomographic imaging systems with flat-panel detectors.
机译:目的:以非常详细的方式提出一种用于具有平板探测器的层析成像系统的通用几何校准方法,旨在为公共领域提供有用的工具。方法:该方法基于表示从3D对象坐标系到2D投影图像平面的映射的投影矩阵。投影矩阵可以通过对已知标记几何体的模型进行成像来实验确定。准确的实现是通过直接计算算法实现的,包括使用奇异值分解和数据归一化的新型椭圆拟合。该方法的优点包括:(1)它能够应用于具有不同扫描轨迹,源-探测器对准和探测器定向的系统; (2)投影矩阵可用于图像重建或显式几何参数的提取; (3)该方法对校准体模的设计施加了最小的限制。还提供了用于计算投影矩阵并从中提取几何参数的C ++程序。为了进行验证,将校准方法应用于锥束CT系统的计算机仿真,以及应用于三种不同源探测器运动模式的断层合成原型:光源和探测器同步旋转;源旋转和探测器摆动;光源旋转,检测器保持静止。结果:在逐个视图的基础上计算投影矩阵。从投影矩阵中提取的几何参数与实际设置一致。通过直接使用投影矩阵重建图像,并将其与虚拟Shepp-Logan图像进行CT模拟,并与CTRS乳房模型的中央投影图像进行断层合成原型进行比较。它们没有显示出明显的变形或模糊,表明几何校准结果的高质量。当计算的中心射线偏移被1个像素标准偏差的高斯噪声干扰时,重建的图像显示出明显的失真,这进一步证明了几何校正方法的准确性。结论:该方法适用于具有平板探测器的断层成像系统。

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