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Multileaf collimator tracking integrated with a novel x-ray imaging system and external surrogate monitoring

机译:多叶准直器跟踪与新型X射线成像系统和外部代理监控集成

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We have previously developed a tumour tracking system, which adapts the aperture of a Siemens 160 MLC to electromagnetically monitored target motion. In this study, we exploit the use of a novel linac-mounted kilovoltage x-ray imaging system for MLC tracking. The unique in-line geometry of the imaging system allows the detection of target motion perpendicular to the treatment beam (i.e. the directions usually featuring steep dose gradients). We utilized the imaging system either alone or in combination with an external surrogate monitoring system. We equipped a Siemens ARTISTE linac with two flat panel detectors, one directly underneath the linac head for motion monitoring and the other underneath the patient couch for geometric tracking accuracy assessments. A programmable phantom with an embedded metal marker reproduced three patient breathing traces. For MLC tracking based on x-ray imaging alone, marker position was detected at a frame rate of 7.1 Hz. For the combined external and internal motion monitoring system, a total of only 85 x-ray images were acquired prior to or in between the delivery of ten segments of an IMRT beam. External motion was monitored with a potentiometer. A correlation model between external and internal motion was established. The real-time component of the MLC tracking procedure then relied solely on the correlation model estimations of internal motion based on the external signal. Geometric tracking accuracies were 0.6 mm (1.1 mm) and 1.8 mm (1.6 mm) in directions perpendicular and parallel to the leaf travel direction for the x-ray-only (the combined external and internal) motion monitoring system in spite of a total system latency of ~0.62 s (~0.51 s). Dosimetric accuracy for a highly modulated IMRT beamassessed through radiographic film dosimetryimproved substantially when tracking was applied, but depended strongly on the respective geometric tracking accuracy. In conclusion, we have for the first time integrated MLC tracking with x-ray imaging in the in-line geometry and demonstrated highly accurate respiratory motion tracking.
机译:我们以前开发了一种肿瘤跟踪系统,它适应西门子160mLC的孔径以电磁监测的目标运动。在这项研究中,我们利用了一种用于MLC跟踪的新型Linac安装窑X射线成像系统。成像系统的独特在线几何形状允许检测垂直于处理梁的目标运动(即通常具有陡倍数梯度的方向)。我们可以单独使用成像系统或与外部代理监控系统结合使用。我们用两个平板探测器配备了一个西门子艺人Linac,一个直接在Linac头部下方,用于运动监控,另一个在患者患者下方进行几何跟踪精度评估。具有嵌入式金属标记的可编程模型再现三个患者呼吸痕迹。对于仅基于X射线成像的MLC跟踪,以7.1Hz的帧速率检测标记位置。对于组合的外部和内部运动监控系统,在IMRT光束的十个区段之间或在递送的10个段之间进行总共仅获得85个X射线图像。用电位器监测外部运动。建立了外部和内部运动之间的相关模型。然后,MLC跟踪过程的实时分量仅依赖于基于外部信号的内部运动的相关模型估计。几何跟踪精度分别为0.6毫米(1.1毫米)和1.8毫米(1.6毫米)在方向垂直和平行于该x射线只(合并的外部和内部的)运动监控系统的叶行进方向,尽管总的系统的延迟〜0.62 s(〜0.51秒)。通过基本上通过射线照相膜的高压膜的高度调制IMRT光束的剂量精度基本上在施加跟踪时,但在相应的几何跟踪精度上强烈依赖。总之,我们具有第一次集成的MLC跟踪,在线几何形状中具有X射线成像,并证明了高精度的呼吸运动跟踪。

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  • 来源
    《Physics in medicine and biology.》 |2012年第8期|共15页
  • 作者单位

    Department of Medical Physics in Radiation Oncology German Cancer Research Center (DKFZ) Im;

    Department of Medical Physics in Radiation Oncology German Cancer Research Center (DKFZ) Im;

    Department of Medical Physics in Radiation Oncology German Cancer Research Center (DKFZ) Im;

    Department of Medical Physics in Radiation Oncology German Cancer Research Center (DKFZ) Im;

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  • 正文语种 eng
  • 中图分类 R35;
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