模拟放射治疗中电子束百分比深度剂量曲线的经验方法

IF 0.7 Q4 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Polish Journal of Medical Physics and Engineering Pub Date : 2021-12-01 DOI:10.2478/pjmpe-2021-0037
Dongmei Chen, Yanshan Zhang, Y. Ye, Jia-Ming Wu
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引用次数: 0

摘要

摘要:介绍了一种利用主尾函数对放射治疗中电子束百分比深度剂量曲线(PDD)进行建模的经验方法。利用模型参数N和N可以推导出电子能量在放射治疗中的深度相对停止功率。方法与材料:采用主尾函数对电子PDD曲线进行建模。主函数由指数函数和主要参数N、µ组成,尾函数由主要参数N的s型函数组成。通过调整N、µ和N的参数,主函数和尾函数分别模拟了5个电子能的PDD, R50和Rp可由PDD的80% ~ 20%区域的建模直线得到。用主尾函数对不同锥体尺寸的相同电子能量进行了建模。不同电子能量在不同深度下的停止功率也可以由N、µ和N的参数推导出来。然后,将其深度相关停止功率除以与原始水模测量值比较,可以由百分比深度剂量得到百分比电离深度曲线。结果:随着电子能量的增加,主要参数N、N增大,主尾函数µ减小。参数n、n和LN(-µ)与电子能量的关系分别为n = 31.667 E0 - 88、n = 0.9975 E0 - 2.8535、LN(-µ)= -0.1355 E0 - 6.0986。不同电子能量的停止功率可由n和n导出,其公式为:停止功率=(−0.042 ln NE0 + 1.072)e(−n−E0·5·10 - 5+0.0381·d),其中d为在水中的深度。在一定的电子能量下,由百分比读数曲线乘以与水中深度有关的停止功率得出百分比深度剂量。结论:不同能量和场大小下电子的PDD可以用经验模型来模拟,以处理停止功率的计算。主尾方程为研究电子束在放射治疗中的行为提供了比铅笔束或其他数值算法更简单的解。
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Empirical method for modeling the percent depth dose curves of electron beam in radiation therapy
Abstract Introduction: This study presents an empirical method to model the electron beam percent depth dose curve (PDD) using the primary and tail functions in radiation therapy. The modeling parameters N and n can be used to derive the depth relative stopping power of the electron energy in radiation therapy. Methods and Materials: The electrons PDD curves were modeled with the primary-tail function in this study. The primary function included exponential function and main parameters of N, µ while the tail function was composed by a sigmoid function with the main parameter of n. The PDD for five electron energies were modeled by the primary and tail function by adjusting the parameters of N, µ and n. The R50 and Rp can be derived from the modeled straight line of 80% to 20% region of PDD. The same electron energy with different cone sizes was also modeled with the primary-tail function. The stopping power for different electron energies at different depths can also be derived from the parameters of N, µ and n. Percent ionization depth curve can then be derived from the percent depth dose by dividing its depth relevant stopping power for comparing with the original water phantom measurement. Results: The main parameters N, n increase, but µ decreases in primary-tail function when electron energy increased. The relationship of parameters n, N and LN(-µ) with electron energy are n = 31.667 E0 - 88, N = 0.9975 E0 - 2.8535, LN(-µ) = -0.1355 E0 - 6.0986, respectively. Stopping power of different electron energy can be derived from n and N with the equation: stopping power = (−0.042 ln NE0 + 1.072)e(−n−E0·5·10−5+0.0381·d), where d is the depth in water. Percent depth dose was derived from the percent reading curve by multiplying the stopping power relevant to the depth in water at certain electron energy. Conclusion: The PDD of electrons at different energies and field sizes can be modeled with an empirical model to deal with the stopping power calculation. The primary-tail equation provides a uncomplicated solution than a pencil beam or other numerical algorism for investigators to research the behavior of electron beam in radiation therapy.
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来源期刊
Polish Journal of Medical Physics and Engineering
Polish Journal of Medical Physics and Engineering RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
1.30
自引率
0.00%
发文量
19
期刊介绍: Polish Journal of Medical Physics and Engineering (PJMPE) (Online ISSN: 1898-0309; Print ISSN: 1425-4689) is an official publication of the Polish Society of Medical Physics. It is a peer-reviewed, open access scientific journal with no publication fees. The issues are published quarterly online. The Journal publishes original contribution in medical physics and biomedical engineering.
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