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采用自动化数据采集单一体模设置进行高效质量保证,以确定放射治疗和影像设备等中心重合度。

Efficient quality assurance method with automated data acquisition of a single phantom setup to determine radiation and imaging isocenter congruence.

机构信息

Department of Radiation Oncology, Loyola Medicine, Maywood, IL, USA.

出版信息

J Appl Clin Med Phys. 2019 Oct;20(10):127-133. doi: 10.1002/acm2.12723. Epub 2019 Sep 19.

Abstract

We developed a quality assurance (QA) method to determine the isocenter congruence of Optical Surface Monitoring System (OSMS, Varian, CA, USA), kilovoltage (kV), and megavoltage (MV) imaging, and the radiation isocenter using a single setup of the OSMS phantom for frameless Stereotactic Radiosurgery (SRS) treatment. After aligning the phantom to the OSMS isocenter, a cone-beam computed tomography (CBCT) of the phantom was acquired and registered to a computed tomography (CT) scan of the phantom to determine the CBCT isocenter. Without moving the phantom, MV and kV images were simultaneously acquired at four gantry angles to localize MV and kV isocenters. Then, Winston-Lutz (W-L) test images of the central BB in the phantom were acquired to analyze the radiation isocenter. The gantry and couch were automatically controlled using the TrueBeam Developer Mode during MV, kV, and W-L image acquisition. All the images were acquired weekly for 17 weeks to track the congruence of all the imaging modalities' isocenter in six-dimensional (6D) translations and rotations, and the radiation isocenter in three-dimensional (3D) translations. The shifts of isocenters of all imaging modalities and the radiation isocenter from the OSMS isocenter were within 0.2 mm and 0.2° on average over 17 weeks. The maximum discrepancy between OSMS and other imaging modalities or radiation isocenters was 0.8 mm and 0.3°. However, systematic shifts of radiation isocenter anteriorly and laterally relative to the OSMS isocenter were observed. The measured discrepancies were consistent from week-to-week except for two weeks when the isocenter discrepancies of 0.8 mm were noted due to drifts of the OSMS isocenter. Once recalibration was performed on OSMS, the discrepancy was reduced to 0.3 mm and 0.2°.By performing the proposed QA on a weekly basis, the isocenter congruencies of multiple imaging systems and radiation isocenter were validated for a linear accelerator.

摘要

我们开发了一种质量保证 (QA) 方法,以确定光学表面监测系统 (OSMS,美国加利福尼亚州瓦里安)、千伏 (kV) 和兆伏 (MV) 成像以及使用 OSMS 体模的单次设置的辐射等中心的一致性,用于无框架立体定向放射外科 (SRS) 治疗。在将体模与 OSMS 等中心对齐后,获取体模的锥形束计算机断层扫描 (CBCT) 并将其与体模的计算机断层扫描 (CT) 进行配准,以确定 CBCT 等中心。在不移动体模的情况下,同时在四个旋转机架角度采集 MV 和 kV 图像,以定位 MV 和 kV 等中心。然后,获取体模中央 BB 的 Winston-Lutz (W-L) 测试图像,以分析辐射等中心。在 MV、kV 和 W-L 图像采集过程中,使用 TrueBeam 开发者模式自动控制旋转机架和治疗床。每周采集所有图像 17 周,以跟踪所有成像方式的等中心在六维 (6D) 平移和旋转以及三维 (3D) 平移中的一致性,以及辐射等中心。在 17 周的时间内,所有成像方式和辐射等中心的等中心从 OSMS 等中心的移位在 0.2 毫米和 0.2°以内。OSMS 与其他成像方式或辐射等中心之间的最大差异为 0.8 毫米和 0.3°。然而,观察到辐射等中心相对于 OSMS 等中心向前和侧向的系统移位。除了由于 OSMS 等中心漂移而注意到 0.8 毫米的等中心差异的两周外,每周的测量差异都是一致的。一旦对 OSMS 进行重新校准,差异就减少到 0.3 毫米和 0.2°。通过每周进行建议的 QA,验证了线性加速器的多个成像系统和辐射等中心的等中心一致性。

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