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Image Quality, Scatter, and Dose in Compact CBCT Systems with Flat and Curved Detectors

机译:具有平坦和弯曲探测器的紧凑型CBCT系统中的图像质量,散射和剂量

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Purpose: A number of cone-beam CT (CBCT) applications demand increasingly compact system designs for smaller footprint and improved portability. Such compact geometries can be achieved via reduction of air gap and integration of novel, curved detectors; however, the increased x-ray scatter in presents a major challenge to soft-tissue image quality in such compact arrangements. This work investigates pre-patient modulation (bowtie filters) and antiscatter grids to mitigate such effects for compact geometries with curved detectors. Methods: The effects of bowtie filters on dose and x-ray scatter were investigated in a compact geometry (180 mm air gap), for three detector curvatures: Flat, Focused at source, and Compact focused at isocenter. Experiments used bowtie filters of varying curvature combined with antiscatter grids (GR: 8:1, 80 lpmm). Scatter was estimated via GPU-accelerated Monte Carlo simulation in an anthropomorphic head phantom. Primary fluence was estimated with a polychromatic Siddon projector. Realistic Poisson noise (total dose: 20 mGy) was added to the total signal. Scatter magnitude and distribution were evaluated in projection data, and CT image quality was assessed in PWLS reconstructions. Results were validated in physical experiments on an x-ray test-bench for CBCT. Results: Moderate bowties combined with grids reduced average scatter magnitude and SPR, reduced cupping from 90 to 5 HU, and yielded net benefit to CNR despite attenuation of primary fluence. Dose to sensitive organs (eye lens) was reduced by 27%. More aggressive bowties showed further potential for dose reduction (35%) but increased peripheral SPR and increased non-uniformity and artifacts at the periphery of the image. Curved detector geometry exhibited slightly improved uniformity but a slight reduction in CNR compared to conventional flat detector geometry. Conclusion: Highly portable, soft-tissue imaging, CBCT systems with very compact geometry and curved detectors appear feas
机译:目的:许多锥形梁CT(CBCT)应用需求日益紧凑的系统设计,以实现较小的占地面积和提高的便携性。这种紧凑的几何形状可以通过减少气隙和新颖的,弯曲探测器的整合来实现;然而,增加的X射线散射在这种紧凑的布置中对软组织图像质量提出了重大挑战。这项工作调查了患者的预患者调制(Bowtie滤镜)和防脆网格,以减轻具有弯曲探测器的紧凑型几何形状的效果。方法:在紧凑的几何形状(180mm气隙)中,研究了蝴蝶结过滤器对剂量和X射线散射的影响,适用于三个探测器曲率:平坦,聚焦在源极,紧凑型聚焦在Isocenter。实验使用不同曲率的Bowtie滤波器与反iscatter栅格相结合(gr:8:1,80 lpmm)。通过GPU加速的蒙特卡罗模拟估计散射在拟人脑阵容中。用多色Siddon投影机估计初级注量。在总信号中加入了现实泊松噪声(总剂量:20 MGO)。在投影数据中评估散射幅度和分布,并在PWLS重建中评估CT图像质量。结果在CBCT的X射线试验台上的物理实验中验证。结果:适度的蝴蝶结与网格相结合,平均散射幅度和SPR减少,减少90至5U的拔罐,尽管衰减初级注释,但仍然对CNR产生净效益。敏感器官(眼镜)的剂量减少了27%。更具侵略性的弓形弓形剂显示出剂量还原(35%)的进一步潜力,但是外周SPR增加,并且在图像周边增加了不均匀性和伪影。弯曲检测器几何形状表现出略有提高的均匀性,但与传统的扁平检测器几何形状相比,CNR略有降低。结论:高度便携,软组织成像,具有非常紧凑的几何形状和弯曲探测器的CBCT系统出现了令人担忧的

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