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Compensating for head motion in slowly-rotating cone beam CT systems with optimization transfer based motion estimation

机译:通过基于优化传输的运动估计来补偿缓慢旋转锥形CT系统的头部运动

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We present an algorithm that estimates the changing pose of a rigidly moving subject, based on tomographic projections of fiducial markers. The pose estimates can then be used as input data to motion-compensated image reconstruction methods. The proposed algorithm is in the family of so-called optimization transfer algorithms, which have been applied more frequently to tomographic image reconstruction (e.g., the ML-EM algorithm for PET). The algorithm is particularly relevant to the class of slowly-rotating, point-of-care cone beam CT systems, which have recently become prominent in otolaryngological and dental clinics for head and neck scanning. These systems are more compact and inexpensive than traditional CT systems, but because of their slower gantry rotation, are more susceptible to patient head motion over the course of the scan. A virtue of our algorithm is that it does not require a priori knowledge of the marker geometry. The relative positions of the markers are co-estimated together with their 6 degree of freedom position/orientation in each projection view. This means that the marker configuration can be deformably adjusted to fit different patients, giving considerably more flexibility in the design of the marker-to-head attachment gear than with conventional fiducial-based approaches. Our algorithm is also both fast and accurate. In a highly sub-optimal MATLAB implementation, we typically achieve motion estimates yielding sub-millimeter positioning error in 15–30 seconds. We also present motion-compensated reconstructions from real CT acquisitions as evidence of motion-estimation performance.
机译:我们提出了一种估计基于基于基准标记的断层摄影的刚性移动主体的变化姿势的算法。然后,姿势估计可以用作运动补偿图像重建方法的输入数据。所提出的算法在所谓的优化传输算法的系列中,该算法已经更频繁地应用于断层图像重建(例如,PET的ML-EM算法)。该算法与缓慢旋转的类别尤其相关,最近在头部和颈部扫描的耳鼻喉科和牙科诊所中最近变得突出的速度旋转的CT系统。这些系统比传统的CT系统更紧凑,廉价,但由于其较慢的龙门旋转,在扫描过程中更容易受到患者头部运动的影响。我们的算法的美德是它不需要先验的标记几何知识。标记物的相对位置与每个投影视图中的6度的自由度/取向共同估计。这意味着可以更可变地调节标记配置以适应不同的患者,在标记到头附件的设计中比以传统的基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于基于患者进行调整的标记配置。我们的算法也很快和准确。在高度次优的MATLAB实现中,我们通常在15-30秒内实现产生子毫米定位误差的运动估计。我们还从真正的CT采集中呈现运动补偿重建作为运动估计性能的证据。

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