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A Practical Cone-beam CT Scatter Correction Method with Optimized Monte Carlo Simulations for Image-Guided Radiation Therapy

机译:实用的锥束CT散射校正方法和优化的蒙特卡洛模拟用于图像引导放射治疗

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摘要

Cone-beam CT (CBCT) has become the standard image guidance tool for patient setup in image-guided radiation therapy. However, due to its large illumination field, scattered photons severely degrade its image quality. While kernel-based scatter correction methods have been used routinely in the clinic, it is still desirable to develop Monte Carlo (MC) simulation-based methods due to their accuracy. However, the high computational burden of the MC method has prevented routine clinical application. This paper reports our recent development of a practical method of MC-based scatter estimation and removal for CBCT. In contrast with conventional MC approaches that estimate scatter signals using a scatter-contaminated CBCT image, our method used a planning CT image for MC simulation, which has the advantages of accurate image intensity and absence of image truncation. In our method, the planning CT was first rigidly registered with the CBCT. Scatter signals were then estimated via MC simulation. After scatter signals were removed from the raw CBCT projections, a corrected CBCT image was reconstructed. The entire workflow was implemented on a GPU platform for high computational efficiency. Strategies such as projection denoising, CT image downsampling, and interpolation along the angular direction were employed to further enhance the calculation speed. We studied the impact of key parameters in the workflow on the resulting accuracy and efficiency, based on which the optimal parameter values were determined. Our method was evaluated in numerical simulation, phantom, and real patient cases. In the simulation cases, our method reduced mean HU errors from 44 HU to 3 HU and from 78 HU to 9 HU in the full-fan and the half-fan cases, respectively. In both the phantom and the patient cases, image artifacts caused by scatter, such as ring artifacts around the bowtie area, were reduced. With all the techniques employed, we achieved computation time of less than 30 sec including the time for both the scatter estimation and CBCT reconstruction steps. The efficacy of our method and its high computational efficiency make our method attractive for clinical use.
机译:锥束CT(CBCT)已成为用于图像引导放射治疗中患者设置的标准图像引导工具。然而,由于其大的照明场,散射的光子严重降低了其图像质量。尽管基于核的散射校正方法已在临床中常规使用,但由于其准确性,仍需要开发基于蒙特卡洛(MC)模拟的方法。然而,MC方法的高计算负担阻碍了常规临床应用。本文报告了我们最近开发的一种实用的基于CBCT的基于MC的散射估计和消除方法。与使用散布污染的CBCT图像估计散布信号的常规MC方法相比,我们的方法使用计划的CT图像进行MC模拟,其优点是图像强度准确且没有图像截断。在我们的方法中,计划CT首先在CBCT中严格注册。然后通过MC仿真估算散射信号。从原始CBCT投影中删除散射信号后,将重建校正的CBCT图像。整个工作流程都在GPU平台上实现,以实现高计算效率。采用投影降噪,CT图像下采样和沿角度方向插值等策略来进一步提高计算速度。我们研究了工作流程中关键参数对结果准确性和效率的影响,并据此确定了最佳参数值。我们的方法在数值模拟,体模和实际患者案例中进行了评估。在模拟情况下,我们的方法将全风扇和半风扇情况下的平均HU误差分别从44 HU降低到3 HU和将78 HU降低到9 HU。在体模和患者情况下,由散射引起的图像伪像(例如领结区域周围的环形伪像)均减少了。通过使用所有技术,我们实现了不到30秒的计算时间,包括散射估计和CBCT重建步骤的时间。我们方法的有效性及其高计算效率使我们的方法对临床具有吸引力。

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