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首页> 外文期刊>Medical Physics >A Monte Carlo multiple source model applied to radiosurgery narrow photon beams.
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A Monte Carlo multiple source model applied to radiosurgery narrow photon beams.

机译:蒙特卡洛多源模型应用于放射外科窄光子束。

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Monte Carlo (MC) methods are nowadays often used in the field of radiotherapy. Through successive steps, radiation fields are simulated, producing source Phase Space Data (PSD) that enable a dose calculation with good accuracy. Narrow photon beams used in radiosurgery can also be simulated by MC codes. However, the poor efficiency in simulating these narrow photon beams produces PSD whose quality prevents calculating dose with the required accuracy. To overcome this difficulty, a multiple source model was developed that enhances the quality of the reconstructed PSD, reducing also the time and storage capacities. This multiple source model was based on the full MC simulation, performed with the MC code MCNP4C, of the Siemens Mevatron KD2 (6 MV mode) linear accelerator head and additional collimators. The full simulation allowed the characterization of the particles coming from the accelerator head and from the additional collimators that shape the narrow photon beams used in radiosurgery treatments. Eight relevant photon virtual sources were identified from the full characterization analysis. Spatial and energy distributions were stored in histograms for the virtual sources representing the accelerator head components and the additional collimators. The photon directions were calculated for virtual sources representing the accelerator head components whereas, for the virtual sources representing the additional collimators, they were recorded into histograms. All these histograms were included in the MC code, DPM code and using a sampling procedure that reconstructed the PSDs, dose distributions were calculated in a water phantom divided in 20000 voxels of 1 x 1 x 5 mm3. The model accurately calculates dose distributions in the water phantom for all the additional collimators; for depth dose curves, associated errors at 2sigma were lower than 2.5% until a depth of 202.5 mm for all the additional collimators and for profiles at various depths, deviations between measured and calculated values were less than 2.5% or 1 mm.
机译:如今,蒙特卡洛(MC)方法经常用于放射治疗领域。通过连续的步骤,对辐射场进行了模拟,产生了源相空间数据(PSD),从而可以高精度地进行剂量计算。放射外科中使用的窄光子束也可以通过MC代码进行模拟。但是,模拟这些窄光子束的效率低下会产生PSD,其质量无法以所需的精度计算剂量。为了克服这一困难,开发了一种多源模型,该模型可以提高重构的PSD的质量,同时还可以减少时间和存储容量。该多源模型基于西门子Mevatron KD2(6 MV模式)线性加速器头和附加准直器的完整MC仿真,该仿真使用MC代码MCNP4C执行。完整的模拟可以表征来自加速器头和其他准直器的粒子,这些准直器塑造了放射外科治疗中使用的窄光子束。从完整的表征分析中鉴定出八个相关的光子虚拟源。空间和能量分布存储在直方图中,用于表示加速器头部组件和附加准直器的虚拟源。对于代表加速器头部组件的虚拟源,计算了光子方向,而对于代表附加准直器的虚拟源,将它们记录为直方图。所有这些直方图都包含在MC代码,DPM代码中,并使用重构PSD的采样程序,在划分为1x 1 x 5 mm3的20000体素的水模型中计算了剂量分布。该模型为所有附加的准直器准确计算水模中的剂量分布;对于深度剂量曲线,对于所有附加的准直器,直到22.5 mm的深度,2sigma的相关误差均低于2.5%;对于不同深度的剖面,测量值与计算值之间的偏差小于2.5%或1 mm。

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