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A simplified approach to characterizing a kilovoltage source spectrum for accurate dose computation

机译:表征千伏电压源频谱以简化剂量计算的简化方法

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摘要

Purpose: To investigate and validate the clinical feasibility of using half-value layer (HVL) and peak tube potential (kVp) for characterizing a kilovoltage (kV) source spectrum for the purpose of computing kV x-ray dose accrued from imaging procedures. To use this approach to characterize a Varian? On-Board Imager? (OBI) source and perform experimental validation of a novel in-house hybrid dose computation algorithm for kV x-rays. Methods: We characterized the spectrum of an imaging kV x-ray source using the HVL and the kVp as the sole beam quality identifiers using third-party freeware Spektr to generate the spectra. We studied the sensitivity of our dose computation algorithm to uncertainties in the beam's HVL and kVp by systematically varying these spectral parameters. To validate our approach experimentally, we characterized the spectrum of a Varian? OBI system by measuring the HVL using a Farmer-type Capintec ion chamber (0.06 cc) in air and compared dose calculations using our computationally validated in-house kV dose calculation code to measured percent depth-dose and transverse dose profiles for 80, 100, and 125 kVp open beams in a homogeneous phantom and a heterogeneous phantom comprising tissue, lung, and bone equivalent materials. Results: The sensitivity analysis of the beam quality parameters (i.e., HVL, kVp, and field size) on dose computation accuracy shows that typical measurement uncertainties in the HVL and kVp (±0.2 mm Al and ±2 kVp, respectively) source characterization parameters lead to dose computation errors of less than 2. Furthermore, for an open beam with no added filtration, HVL variations affect dose computation accuracy by less than 1 for a 125 kVp beam when field size is varied from 5 × 5 cm 2 to 40 × 40 cm 2. The central axis depth dose calculations and experimental measurements for the 80, 100, and 125 kVp energies agreed within 2 for the homogeneous and heterogeneous block phantoms, and agreement for the transverse dose profiles was within 6. Conclusions: The HVL and kVp are sufficient for characterizing a kV x-ray source spectrum for accurate dose computation. As these parameters can be easily and accurately measured, they provide for a clinically feasible approach to characterizing a kV energy spectrum to be used for patient specific x-ray dose computations. Furthermore, these results provide experimental validation of our novel hybrid dose computation algorithm.
机译:目的:研究和验证使用半值层(HVL)和峰值管电势(kVp)表征千伏(kV)源光谱的临床可行性,以计算成像过程中产生的kV X射线剂量。要使用这种方法来表征瓦里安?车载成像仪? (OBI)来源并执行针对kV X射线的新型内部混合剂量计算算法的实验验证。方法:我们使用第三方免费软件Spektr使用HVL和kVp作为唯一的光束质量标识符来表征kV成像X射线源的光谱,以生成光谱。通过系统地改变这些光谱参数,我们研究了剂量计算算法对光束的HVL和kVp不确定性的敏感性。为了通过实验验证我们的方法,我们对Varian? OBI系统,方法是使用空气中的Farmer型Capintec离子室(0.06 cc)测量HVL,并使用我们经过计算机验证的内部kV剂量计算代码比较剂量计算,以测量80、100,均质体模和均质体模中的125 kVp明束,包括组织,肺和骨等价材料。结果:光束质量参数(即HVL,kVp和场大小)对剂量计算精度的敏感性分析表明,在HVL和kVp(分别为±0.2 mm Al和±2 kVp)源表征参数中,典型的测量不确定度导致剂量计算误差小于2。此外,对于无附加过滤的开放束,当场大小从5×5 cm 2变为40×时,对于125 kVp束,HVL变化对剂量计算精度的影响小于1。 40 cm 2.对于80 kV,100 kV和125 kVp能量,中心轴深度剂量的计算和实验测量值在2内一致和均匀的块状体模一致,横向剂量分布的一致性在6范围内。结论:HVL和kVp足以表征kV x射线源光谱,以进行准确的剂量计算。由于可以轻松,准确地测量这些参数,因此它们提供了一种临床可行的方法来表征将用于患者特定X射线剂量计算的kV能谱。此外,这些结果为我们的新型混合剂量计算算法提供了实验验证。

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