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A preliminary study on a real-time dose monitoring system based on scintillating fibers for brachytherapy

机译:基于闪烁纤维的近距离放射治疗实时剂量监测系统的初步研究

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Purpose: We developed and evaluated a preliminary scintillating fiber-based real-time dose monitoring system (SRDMS) for brachytherapy.Materials and methods: The SRDMS consisted of a detector section with 10 scintillating fibers (BCF-12, Saint Gobain Inc., S.A. France) inserted into a long barrel cylinder and a readout system comprising a photo-multiplier tube (PMT H12428-203 MOD, Hamamatsu Photonics, Shizuoka, Japan) and National Instrument Measurement & Automation Explorer (NI MAX, National Instruments, TX, USA). Basic system performance was estimated by measuring the dwell position and time for various patterns of source motion. Signal output response with data sampling, linearity, and reproducibility was also evaluated. In addition, dwell position and time measurement via the SRDMS were compared across three treatment plans, which were applied to a silicone-based human phantom to evaluate the system's response to more complex and realistic situations.Results: The difference between the measured source dwell position and plan was -0.52 +/- 0.53 mm. The difference between the measured dwell time and plan was 7 +/- 5 ms. For signal output verification, the signal-to-SD ratio was less than 1.5%. The signal output linearity was maintained at -0.43 +/- 0.50%, and reproducibility was 1.35 +/- 1.44%.Conclusions: In this study, we demonstrated that the SRDMS can accurately detect relative dwell positions and dwell times. In further studies, we plan to verify the accuracy of relative source strength, and update the SRDMS with real-time monitoring. The SRDMS could be used for real-time dose monitoring during brachytherapy.
机译:目的:我们开发并评估了用于近距离放射治疗的基于闪烁纤维的实时实时剂量监测系统(SRDMS)。材料和方法:SRDMS包括一个带有10条闪烁纤维的检测器部分(BCF-12,Saint Gobain Inc.,SA法国)插入一个长桶圆柱体和一个读出系统中,该读出系统包括一个光电倍增管(PMT H12428-203 MOD,日本静冈市Hamamatsu Photonics)和国家仪器测量与自动化浏览器(NI MAX,美国德克萨斯州国家仪器) 。通过测量各种源运动模式的驻留位置和时间来估算基本系统性能。还评估了具有数据采样,线性和可再现性的信号输出响应。此外,还比较了通过SRDMS进行的驻留位置和时间测量的三个处理计划,并将其应用于基于硅树脂的人体模型上,以评估系统对更复杂和现实情况的响应。结果:所测量的源驻留位置之间的差异计划为-0.52 +/- 0.53毫米。测量的停留时间与计划之间的差异为7 +/- 5毫秒。对于信号输出验证,信号与SD的比率小于1.5%。信号输出线性度保持在-0.43 +/- 0.50%,重现性为1.35 +/- 1.44%。结论:在这项研究中,我们证明了SRDMS可以准确检测相对停留位置和停留时间。在进一步的研究中,我们计划验证相对源强度的准确性,并通过实时监控更新SRDMS。 SRDMS可用于近距离放射治疗期间的实时剂量监测。

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