偏置平板检测器圆锥束CT的迭代重建

E. Hansis, J. Bredno, D. Sowards-Emmerd, L. Shao
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引用次数: 18

摘要

圆锥束计算机断层扫描(CBCT)与切向偏移平板x射线探测器提供了一个大的CT视场(FoV)与一个相对较小的探测器。在实践中使用它,例如,对目标成像在图像引导放射治疗或本地化和衰减校正SPECT / CT成像。x射线投影,获得一个圆形轨迹,每个CT FoV半壁江山;所有投影成像中心重叠区域。偏移检测器CBCT重建需要特殊的算法。对于较大的检测器偏移量,以前提出的滤波反向投影方法可能导致阴影伪影,特别是左/右强度不平衡。在这里,我们提出了使用迭代重建偏移检测器CBCT。为了处理特殊的采集几何图形,对已知的迭代重建算法进行了轴向截断补偿、冗余加权和算法初始化等方面的改进。使用图形处理单元(GPU)的有效实现提供临床可行的重建时间。结果从病人和幻影研究提出,显示明显减少了伪影和改善图像质量。
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Iterative reconstruction for circular cone-beam CT with an offset flat-panel detector
Circular cone-beam computed tomography (CBCT) with a tangentially offset flat-panel X-ray detector offers a large CT field-of-view (FoV) with a relatively small detector. It is used in practice, e.g., for target imaging in image-guided radiotherapy or for localization and attenuation correction in SPECT/CT imaging. The X-ray projections, acquired on a circular source trajectory, each cover roughly half the CT FoV; a central overlap region is imaged by all projections. Offset-detector CBCT reconstruction requires special algorithms. For large detector offsets, previously proposed filtered-backprojection methods can lead to shading artifacts, specifically left/right intensity imbalance. Here, we propose using iterative reconstruction for offset-detector CBCT. To handle the special acquisition geometry, known iterative reconstruction algorithms are modified in terms of axial truncation compensation, redundancy weighting, and algorithm initialization. An efficient implementation using a graphics processing unit (GPU) delivers clinically feasible reconstruction times. Results from patient and phantom studies are presented, showing a clear reduction of artifacts and improvement in image quality.
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