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首页> 外文期刊>Medical Physics >The feasibility study and characterization of a two-dimensional diode array in 'magic phantom' for high dose rate brachytherapy quality assurance
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The feasibility study and characterization of a two-dimensional diode array in 'magic phantom' for high dose rate brachytherapy quality assurance

机译:高剂量率近距离放射治疗质量保证的“幻影”中二维二极管阵列的可行性研究和表征

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Purpose: High dose rate (HDR) brachytherapy is a radiation treatment technique capable of delivering large dose rates to the tumor. Radiation is delivered using remote afterloaders to drive highly active sources (commonly 192Ir with an air KERMA strength range between 20 000 and 40 000 U, where 1 U = 1 μGy m2/h in air) through applicators directly into the patient's prescribed region of treatment. Due to the obvious ramifications of incorrect treatment while using such an active source, it is essential that there are methods for quality assurance (QA) that can directly and accurately verify the treatment plan and the functionality of the remote afterloader. This paper describes the feasibility study of a QA system for HDR brachytherapy using a phantom based two-dimensional 11 × 11 epitaxial diode array, named "magic phantom." Methods: The HDR brachytherapy treatment plan is translated to the phantom with two rows of 10 (20 in total) HDR source flexible catheters, arranged above and below the diode array "magic plate" (MP). Four-dimensional source tracking in each catheter is based upon a developed fast iterative algorithm, utilizing the response of the diodes in close proximity to the 192Ir source, sampled at 100 ms intervals by a fast data acquisition (DAQ) system. Using a 192Ir source in a solid water phantom, the angular response of the developed epitaxial diodes utilized in the MP and also the variation of the MP response as a function of the source-to-detector distance (SDD) were investigated. These response data are then used by an iterative algorithm for source dwelling position determination. A measurement of the average transit speed between dwell positions was performed using the diodes and a fast DAQ. Results: The angular response of the epitaxial diode showed a variation of 15% within 360°, with two flat regions above and below the detector face with less than 5% variation. For SDD distances of between 5 and 30 mm the relative response of the epitaxial diodes used in the MP is in good agreement (within 8%) with radial dose function measurements found within the TG-43 protocol, with SDD of up to 70 mm showing a 40% over response. A method for four-dimensional localization of the HDR source was developed, allowing the source dwell position to be derived within 0.50 mm of the expected position. An estimation of the average transit speed for varying step sizes was determined and was found to increase from (12.8 ± 0.3) up to (38.6 ± 0.4) cm/s for a step size of 2.5 and 50 mm, respectively. Conclusions: Our characterization of the designed QA "magic phantom" with MP in realistic HDR photon fields demonstrates the promising performance for real-time source position tracking in four dimensions and measurements of transit times. Further development of this system will allow a full suite for QA in HDR brachytherapy and analysis, and for future in vivo tracking.
机译:目的:高剂量率(HDR)近距离放射疗法是一种能够向肿瘤提供大剂量率的放射治疗技术。辐射是通过远程后装填器驱动的,通过驱动器将高活性光源(通常为192Ir,空气KERMA强度范围为20000至40 000 U,其中空气中1 U = 1μGym2 / h)直接送入患者指定的治疗区域。由于使用这样的有源光源时明显会产生不正确的处理结果,因此至关重要的是,有一些质量保证(QA)方法可以直接且准确地验证处理计划和远程后装载器的功能。本文描述了使用基于幻像的二维11×11外延二极管阵列(称为“幻像”)进行HDR近距离放射治疗QA系统的可行性研究。方法:将HDR近距离放射治疗计划通过两排10排(总共20根)HDR源柔性导管转换为体模,并在二极管阵列“魔板”(MP)的上方和下方排列。每个导管中的四维源跟踪均基于已开发的快速迭代算法,该算法利用紧邻192Ir源的二极管的响应,并通过快速数据采集(DAQ)系统以100 ms的间隔进行采样。在固态水体模型中使用192Ir源,研究了MP中开发的外延二极管的角响应以及MP响应随源到检测器距离(SDD)的变化。这些响应数据然后由迭代算法用于确定源居住位置。使用二极管和快速DAQ对驻留位置之间的平均通过速度进行了测量。结果:外延二极管的角度响应在360°内显示15%的变化,在检测器表面上方和下方的两个平坦区域变化小于5%。对于5到30 mm之间的SDD距离,MP中使用的外延二极管的相对响应与TG-43协议中的径向剂量功能测量值吻合良好(在8%之内),显示的SDD高达70 mm超出响应40%。开发了一种用于HDR源的四维定位的方法,允许将源驻留位置导出到预期位置的0.50 mm之内。确定了不同步长的平均行进速度的估计值,发现步长为2.5和50 mm时,平均行进速度从(12.8±0.3)cm / s增加到(38.6±0.4)cm / s。结论:我们在现实的HDR光子场中使用MP设计的QA“魔术幻像”的特性证明了在四个维度上对实时源位置跟踪和传输时间的测量具有令人鼓舞的性能。该系统的进一步开发将为HDR近距离放射治疗和分析以及未来的体内追踪提供全套的质量保证。

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