论文标题

通过局部线性嵌入进行螺旋光子计数CT的运动校正

Motion Correction via Locally Linear Embedding for Helical Photon-counting CT

论文作者

Li, Mengzhou, Lowe, Chiara, Butler, Anthony, Butler, Phil, Wang, Ge

论文摘要

X射线光子计数检测器(PCD)提供低噪声,高分辨率和光谱表征,代表下一代CT并启用了新的生物医学应用。众所周知,非自愿的患者运动可能会通过常规的CT扫描引起图像伪像,并且由于其较高的检测器螺距和延长的扫描时间,因此PCD的问题变得更加严重。此外,PCD通常会带有大量不良像素,从而使分析图像重建具有挑战性,并排除基于分析重建的最新运动校正方法。在本文中,我们将以前的局部线性嵌入(LLE)锥束运动校正方法扩展到螺旋扫描几何形状,鉴于大面积PCD的高成本,这尤其值得。除了对基于LLE的参数搜索适应螺旋锥光束光子计数CT几何形状外,我们还引入了一个不可靠的体积掩码,以提高运动估计精度,并对逐渐精制的采样网格进行增量更新,以优化准确性和效率。我们的数值结果表明,我们的方法减少了重建体积和整体图像质量的两个纵向末端附近的估计误差。使用我们的方法校正运动后的临床光子计数扫描的实验结果表明,改善了我们的方法,该方法揭示了先前隐藏在运动模糊和伪影的基础上的细微细胞结构。

X-ray photon-counting detector (PCD) offers low noise, high resolution, and spectral characterization, representing a next generation of CT and enabling new biomedical applications. It is well known that involuntary patient motion may induce image artifacts with conventional CT scanning, and this problem becomes more serious with PCD due to its high detector pitch and extended scan time. Furthermore, PCD often comes with a substantial number of bad pixels, making analytic image reconstruction challenging and ruling out state-of-the-art motion correction methods that are based on analytical reconstruction. In this paper, we extend our previous locally linear embedding (LLE) cone-beam motion correction method to the helical scanning geometry, which is especially desirable given the high cost of large-area PCD. In addition to our adaption of LLE-based parametric searching to helical cone-beam photon-counting CT geometry, we introduce an unreliable-volume mask to improve the motion estimation accuracy and perform incremental updating on gradually refined sampling grids for optimization of both accuracy and efficiency. Our numerical results demonstrate that our method reduces the estimation errors near the two longitudinal ends of the reconstructed volume and overall image quality. The experimental results on clinical photon-counting scans of the patient extremities show significant resolution improvement after motion correction using our method, which reveals subtle fine structures previously hidden under motion blurring and artifacts.

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