Ho Anthony K, Gibbs Iris C, Chang Steve D, Main Bill, Adler John R
Theresa Po Cyberknife Center, Hong Kong Adventist Hospital, Hong Kong.
Med Dosim. 2008 Spring;33(1):36-41. doi: 10.1016/j.meddos.2007.04.009.
The Cyberknife is an image-guided radiosurgical system. It uses a compact X-band 6-MV linear accelerator mounted on a robotic arm to deliver radiosurgical doses. While routine quality assurance (QA) is essential for any radiosurgery system, QA plays an even more vital role for the Cyberknife system, due to the complexity of the system and the wide range of applications. This paper presents a technique for performing quality assurance using thermoluminescence detectors (TLDs) and Gafchromic films that is intended to be specific for the Cyberknife. However, with minor modification, the proposed method can also be used for QA of other radiosurgery systems. Our initial QA procedure for the CyberKnife utilized a 30 x 30 x 11-cm solid water phantom containing a planar array of slots for 1x 1 x 1-mm TLDs on a 2-mm grid. With the objective of significantly simplifying CyberKnife QA, a new procedure for verification was developed, which uses much fewer TLDs than the prior solid water phantom technique. This new method requires only that the system target dose to the center of a cluster of 7 TLDs. In a prior study with Gafchromic films, conducted at 3 different Cyberknife facilities, the mean clinically relevant error was demonstrated to be 0.7 mm. A similar Gafchromic film analysis replicated these error measurements as part of the present investigation. It cannot be emphasized enough the importance of implementing routine QA to verify the accuracy of any radiosurgery system. Our quality assurance procedure tests the treatment planning system, as well as the entire treatment delivery including the image targeting system and the robot system. Either TLDs or Gafchromic films may be used for QA test of a radiosurgery system. Using both methods for measurement has the advantage independently verifying the accuracy of the system. This approach, which is routinely in used at our institution, has repeatedly confirmed the submillimeter targeting accuracy of our Cyberknife.
射波刀是一种影像引导的放射外科治疗系统。它使用安装在机器人手臂上的紧凑型X波段6兆伏直线加速器来输送放射外科剂量。虽然常规质量保证(QA)对于任何放射外科系统都至关重要,但由于射波刀系统的复杂性和广泛的应用范围,QA对射波刀系统起着更为关键的作用。本文介绍了一种使用热释光探测器(TLD)和放射变色胶片进行质量保证的技术,该技术专门针对射波刀。然而,经过微小修改,所提出的方法也可用于其他放射外科系统的QA。我们最初的射波刀QA程序使用了一个30×30×11厘米的固体水模体,其中包含一个平面阵列的狭槽,用于在2毫米网格上放置1×1×1毫米的TLD。为了显著简化射波刀QA,开发了一种新的验证程序,该程序使用的TLD比先前的固体水模体技术少得多。这种新方法只要求系统将目标剂量输送到7个TLD组成的簇的中心。在先前一项在3个不同的射波刀设施进行的使用放射变色胶片的研究中,平均临床相关误差被证明为0.7毫米。作为本研究的一部分,类似的放射变色胶片分析重复了这些误差测量。实施常规QA以验证任何放射外科系统的准确性的重要性无论怎么强调都不为过。我们的质量保证程序测试治疗计划系统以及整个治疗输送过程,包括图像靶向系统和机器人系统。TLD或放射变色胶片均可用于放射外科系统的QA测试。使用两种方法进行测量具有独立验证系统准确性的优势。我们机构经常使用这种方法,多次证实了我们射波刀的亚毫米靶向准确性。