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在千伏级CBCT成像中使用二维防散射栅格进行兆伏级交叉散射抑制与校正。

Megavoltage cross-scatter rejection and correction using 2D antiscatter grids in kilovoltage CBCT imaging.

作者信息

Bayat Farhang, Eldib Mohamed Elsayed, Altunbas Cem

机构信息

Department of Radiation Oncology, University of Colorado School of Medicine, Aurora, CO 80045, USA.

出版信息

Proc SPIE Int Soc Opt Eng. 2022;12031. doi: 10.1117/12.2611202. Epub 2022 Apr 4.

Abstract

Simultaneous use of kilovoltage (kV) and megavoltage (MV) beams has numerous potential applications in cone beam computed tomography (CBCT)-guided radiotherapy, such as fast MV+kV CBCT for single breath-hold scan, tumor localization with kV CBCT imaging during MV therapy delivery, and metal artifact suppression. However, the introduction of MV beams results in a large MV-cross scatter fluence incident on the kV Flat Panel Detector (FPD), and thus, deteriorating the low contrast visualization and Hounsfield Unit (HU) accuracy. In this work, we introduced a novel and robust method for reducing the effects of MV cross scatter. First, we implemented a 2D antiscatter grid atop the detector which rejects a large section of MV cross scatter. This hardware-based approach, while effective, allows a fraction of MV cross scatter to be transmitted to the FPD, resulting in artifacts and degraded HU accuracy in CBCT images. We thus introduced a data correction step, which aimed to estimate and correct the remaining MV cross scatter. This approach, referred to as Grid-Based Scatter Sampling, utilized 2D antiscatter grid itself to measure and correct remaining MV cross scatter in projections. We investigated the performance of the proposed approach in experiments by simultaneously acquiring kV CBCT and delivering MV beams with a clinical linac. The results show that the proposed method can substantially reduce HU inaccuracy and increase contrast-to-noise ratio (CNR). Our method does not require synchronization of kV and MV beam pulses, reduction of kV frame acquisition rate, or MV dose rate, and therefore, it is more practical to implement in radiation therapy clinical setting.

摘要

千伏(kV)和兆伏(MV)射线束的同时使用在锥束计算机断层扫描(CBCT)引导的放射治疗中有许多潜在应用,例如用于单次屏气扫描的快速MV+kV CBCT、在MV治疗过程中利用kV CBCT成像进行肿瘤定位以及金属伪影抑制。然而,MV射线束的引入会导致大量MV交叉散射注量入射到kV平板探测器(FPD)上,从而降低低对比度可视化效果和亨氏单位(HU)精度。在这项工作中,我们引入了一种新颖且强大的方法来减少MV交叉散射的影响。首先,我们在探测器顶部安装了一个二维反散射格栅,它可以阻挡大部分MV交叉散射。这种基于硬件的方法虽然有效,但仍会有一部分MV交叉散射传输到FPD,导致CBCT图像中出现伪影并降低HU精度。因此,我们引入了一个数据校正步骤,旨在估计并校正剩余的MV交叉散射。这种方法被称为基于格栅的散射采样,利用二维反散射格栅本身来测量和校正投影中剩余的MV交叉散射。我们通过同时采集kV CBCT并使用临床直线加速器发射MV射线束,在实验中研究了所提出方法的性能。结果表明,所提出的方法可以显著降低HU误差并提高对比度噪声比(CNR)。我们的方法不需要kV和MV束脉冲同步、降低kV帧采集速率或MV剂量率,因此在放射治疗临床环境中实施起来更具实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3131/9028100/67ff1be1791f/nihms-1795895-f0001.jpg

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