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首页> 外文期刊>Medical Physics >Impacts of respiratory phase shifts on motion‐tracking accuracy of the CyberKnife Synchrony? Respiratory Tracking System
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Impacts of respiratory phase shifts on motion‐tracking accuracy of the CyberKnife Synchrony? Respiratory Tracking System

机译:呼吸阶段变化对Cyber Knife同步运动跟踪准确性的影响? 呼吸跟踪系统

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摘要

Purpose The Synchrony TM Respiratory Tracking System (SRTS) component of the CyberKnife ? Robotic Radiosurgery System (Accuray, Inc., Sunnyvale CA) enables real‐time tracking of moving targets by modeling the correlation between the targets and external surrogate light‐emitting diode (LED) markers placed on the patient’s chest. Previous studies reported some cases with respiratory phase shifts between lung tumor and chest wall motions. In this study, the impacts of respiratory phase shifts on the motion‐tracking accuracy of the SRTS were investigated. Methods A plastic scintillator was used to detect the position of the x‐ray beams. The scintillation light was recorded using a camera in a dark room. A moving phantom moved a U‐shaped frame on the scintillator with a 4th power of sinusoidal functions. Three metallic markers for motion tracking and four fluorescent tapes were attached to the frame. The fluorescent tapes were used to identify phantom position and respiratory phase for each video frame. The beam positions collected, when considered relative to the phantom motion, represent the degree of tracking error. Beam position was calculated by adding error value to phantom position. Motions with respiratory phase shifts between the target and an extra stage mimicking chest wall motion were also tested for LED markers. Log files of the SRTS were analyzed to evaluate correlation errors. Results When target and LED marker motions were synchronized with a respiratory cycle of 4?s, the maximum tracking errors for 90% and 95% of beam‐on time were 1.0?mm and 1.2?mm, respectively. The frequency of tracking errors increased when LED marker motion phase preceded target motion. Tracking errors that corresponded to 90% beam‐on time were within 2.4?mm for 5–15% of phase shifts. In contrast, the tracking errors were very large when the LED marker delayed to the target motions; the maximum errors of 90% beam‐on time were 3.0, 3.8, and 7.5?mm for 5%, 10%, and 15% of phase shifts, respectively. The patterns of the tracking errors derived from the scintillation light were very similar to those of the correlation data of the SRTS derived from the log files, indicating that the tracking errors caused mainly due to the errors in modeling the correlation data. With long respiratory cycle of 6?s, the tracking errors were significantly decreased; the maximum tracking errors for 95% beam‐on time were 1.6?mm and 2.2?mm for early and delayed LED motion. Conclusion We have investigated the motion‐tracking accuracy of the CyberKnife SRTS for cases with the respiratory phase shift between the target and the LED marker. The maximum tracking errors for 90% probability were within 2.4?mm when the target delays to the LED markers. When LED marker delays, however, very large tracking errors were observed. With a long respiratory cycle, the tracking errors were greatly improved to less than 2.2?mm. Coaching slow breathing will be useful for accurate motion tracking radiotherapy.
机译:目的是Cyber​​ Knife的同步TM呼吸跟踪系统(SRTS)组件?机器人放射咨询系统(Semicay,Inc.,Sunnyvale CA)通过建模目标和外部代理发光二极管(LED)标记的相关性来实现移动目标的实时跟踪,该目标在患者胸部上放置在患者胸部上。以前的研究报告了一些肺肿瘤和胸壁运动之间呼吸相变的病例。在这项研究中,研究了呼吸相移对SRTS运动跟踪精度的影响。方法使用塑料闪烁体检测X射线束的位置。在暗室中使用相机记录闪烁光。移动幻像在闪烁体上移动了U形框架,具有四个正弦函数的4个力量。用于运动跟踪的三个金属标记物和四个荧光带附着在框架上。荧光胶带用于识别每个视频帧的幻象位置和呼吸相位。在相对于幻像运动中考虑时收集的光束位置代表了跟踪误差的程度。通过将误差值添加到幻象位置来计算光束位置。对于LED标记,还测试了目标和额外阶段之间的呼吸相位偏移的动作也对LED标记进行了测试。分析SRT的日志文件以评估相关错误。结果当目标和LED标记运动与4·s的呼吸周期同步时,90%和95%的波束时间的最大跟踪误差分别为1.0Ωmm和1.2?mm。当LED标记运动相位之前的目标运动时,跟踪误差的频率增加。跟踪对应于90%的波束时间的误差在2.4Ωmm以内为5-15%的相移。相比之下,当LED标记延迟到目标运动时,跟踪误差非常大; 90%的最大误差为3.0,3.8和7.5Ω分别为5%,10%和15%的相移。导出的跟踪误差的模式与来自日志文件导出的SRT的相关数据的跟踪误差的图案非常相似,表明主要是由于建模相关数据的误差而引起的跟踪误差。长呼吸周期为6?S,跟踪误差显着降低; 95%截止时间的最大跟踪误差为1.6Ωmm和2.2?mm,用于提前和延迟的LED运动。结论我们研究了患有靶向呼吸相位和LED标记的呼吸相移的情况的运动跟踪精度。 90%概率的最大跟踪误差在目标延迟到LED标记时在2.4ΩΩmm。然而,当LED标记延迟时,观察到非常大的跟踪误差。通过长呼吸循环,跟踪误差大大提高到小于2.2ΩΩmm。教练缓慢的呼吸对于准确的运动跟踪放射疗法将是有用的。

著录项

  • 来源
    《Medical Physics 》 |2019年第9期| 共10页
  • 作者单位

    Oncology CenterOsaka University HospitalSuita Osaka 565‐0871 Japan;

    Soseikai CyberKnife CenterFushimi‐ku Kyoto 612‐8248 Japan;

    Department of Radiation OncologyOsaka University Graduate School of MedicineSuita Osaka 565‐0871;

    Department of Radiation OncologyOsaka University Graduate School of MedicineSuita Osaka 565‐0871;

    Department of Radiation OncologyOsaka University Graduate School of MedicineSuita Osaka 565‐0871;

    Department of Carbon Ion RadiotherapyOsaka University Graduate School of MedicineSuita Osaka 565;

    Department of Radiation OncologyOsaka University Graduate School of MedicineSuita Osaka 565‐0871;

    Department of Radiation OncologyOsaka University Graduate School of MedicineSuita Osaka 565‐0871;

    Soseikai CyberKnife CenterFushimi‐ku Kyoto 612‐8248 Japan;

    Soseikai CyberKnife CenterFushimi‐ku Kyoto 612‐8248 Japan;

    Soseikai CyberKnife CenterFushimi‐ku Kyoto 612‐8248 Japan;

    Department of Radiation OncologyOsaka University Graduate School of MedicineSuita Osaka 565‐0871;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 基础医学 ;
  • 关键词

    CyberKnife; motion tracking; respiratory phase shifts;

    机译:Cyber Knife;运动跟踪;呼吸相移;

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