ICT Research Center, Key Laboratory of Optoelectronic Technology and System of the Education Ministry of China, Chongqing University, Chongqing, China.
J Xray Sci Technol. 2011;19(3):293-312. doi: 10.3233/XST-2011-0294.
Traditional helical cone-beam Computed Tomography (CT) is based on the assumption that the entire cross-section of the scanned object is covered by x-rays at each view angle. Because of the size limitation of planar detector, the traditional helical cone-beam CT scanning is restricted when the cross-section of the object is larger than the field of view (FOV) of the CT system. The helical cone-beam CT scanning based on FOV half-covered can almost double the FOV, whose mechanism is simple and the scanning efficiency is the same as that of traditional helical cone-beam CT. During reconstruction, the extended helical cone-beam FDK algorithm (called half-covered helical FDK for short) is developed, and the computational efficiency of this algorithm is high. But the reconstruction image has truncation error. Regarding this problem, this paper extends the idea of 2D local reconstruction to 3D half-covered helical cone-beam CT, and develops an improved half-covered helical cone-beam CT reconstruction algorithm based on localized reconstruction filter. Experimental results indicate that the presented algorithm well solves the truncation error of the half-covered helical FDK algorithm, improves the quality of the reconstruction image. And for the noise projection data, the presented algorithm can suppress noise and get better results. Moreover, the reconstruction time is much less.
传统的螺旋锥形束 CT(CT)基于这样的假设,即在每个视角下,扫描物体的整个横截面都被 X 射线覆盖。由于平面探测器的尺寸限制,当物体的横截面大于 CT 系统的视场(FOV)时,传统的螺旋锥形束 CT 扫描受到限制。基于 FOV 半覆盖的螺旋锥形束 CT 扫描几乎可以将 FOV 扩大一倍,其机制简单,扫描效率与传统的螺旋锥形束 CT 相同。在重建过程中,开发了扩展的螺旋锥形束 FDK 算法(简称为半覆盖螺旋 FDK),该算法具有较高的计算效率。但是重建图像存在截断误差。针对这一问题,本文将 2D 局部重建的思想扩展到 3D 半覆盖螺旋锥形束 CT,开发了一种基于局部化重建滤波器的改进的半覆盖螺旋锥形束 CT 重建算法。实验结果表明,该算法很好地解决了半覆盖螺旋 FDK 算法的截断误差问题,提高了重建图像的质量。对于噪声投影数据,该算法可以抑制噪声,得到更好的结果。此外,重建时间也大大减少。