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采用经验法和数值法得出的、针对圆形6兆伏场的硅二极管和金刚石探测器的小场探测器校正因子kQclin,Qmsr (fclin,fmsr) 。

Small field detector correction factors kQclin,Qmsr (fclin,fmsr) for silicon-diode and diamond detectors with circular 6 MV fields derived using both empirical and numerical methods.

作者信息

O'Brien D J, León-Vintró L, McClean B

机构信息

School of Physics, University College Dublin, Belfield, Dublin D4, Ireland and Physics Department, St. Luke's Radiation Oncology Network, Dublin D6, Ireland.

School of Physics, University College Dublin, Belfield, Dublin D4, Ireland.

出版信息

Med Phys. 2016 Jan;43(1):411. doi: 10.1118/1.4938584.

Abstract

PURPOSE

The use of radiotherapy fields smaller than 3 cm in diameter has resulted in the need for accurate detector correction factors for small field dosimetry. However, published factors do not always agree and errors introduced by biased reference detectors, inaccurate Monte Carlo models, or experimental errors can be difficult to distinguish. The aim of this study was to provide a robust set of detector-correction factors for a range of detectors using numerical, empirical, and semiempirical techniques under the same conditions and to examine the consistency of these factors between techniques.

METHODS

Empirical detector correction factors were derived based on small field output factor measurements for circular field sizes from 3.1 to 0.3 cm in diameter performed with a 6 MV beam. A PTW 60019 microDiamond detector was used as the reference dosimeter. Numerical detector correction factors for the same fields were derived based on calculations from a geant4 Monte Carlo model of the detectors and the Linac treatment head. Semiempirical detector correction factors were derived from the empirical output factors and the numerical dose-to-water calculations.

RESULTS

The PTW 60019 microDiamond was found to over-respond at small field sizes resulting in a bias in the empirical detector correction factors. The over-response was similar in magnitude to that of the unshielded diode. Good agreement was generally found between semiempirical and numerical detector correction factors except for the PTW 60016 Diode P, where the numerical values showed a greater over-response than the semiempirical values by a factor of 3.7% for a 1.1 cm diameter field and higher for smaller fields.

CONCLUSIONS

Detector correction factors based solely on empirical measurement or numerical calculation are subject to potential bias. A semiempirical approach, combining both empirical and numerical data, provided the most reliable results.

摘要

目的

使用直径小于3 cm的放射治疗射野导致了小射野剂量测定需要精确的探测器校正因子。然而,已发表的因子并不总是一致,由有偏差的参考探测器、不准确的蒙特卡罗模型或实验误差引入的误差可能难以区分。本研究的目的是在相同条件下,使用数值、经验和半经验技术,为一系列探测器提供一组可靠的探测器校正因子,并检查这些因子在不同技术之间的一致性。

方法

基于使用6 MV射束对直径从3.1 cm到0.3 cm的圆形射野进行的小射野输出因子测量,得出经验探测器校正因子。使用PTW 60019微型金刚石探测器作为参考剂量计。基于探测器和直线加速器治疗头的geant4蒙特卡罗模型计算得出相同射野的数值探测器校正因子。半经验探测器校正因子由经验输出因子和数值水模剂量计算得出。

结果

发现PTW 60019微型金刚石在小射野尺寸下响应过度,导致经验探测器校正因子存在偏差。过度响应的幅度与未屏蔽二极管的相似。除了PTW 60016二极管P外,半经验和数值探测器校正因子之间通常有良好的一致性,对于直径1.1 cm的射野,数值显示的过度响应比半经验值大3.7%,对于更小的射野则更高。

结论

仅基于经验测量或数值计算的探测器校正因子可能存在潜在偏差。结合经验和数值数据的半经验方法提供了最可靠的结果。

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