首页> 外文期刊>Physics in medicine and biology. >DPM, a fast, accurate Monte Carlo code optimized for photon and electron radiotherapy treatment planning dose calculations.
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DPM, a fast, accurate Monte Carlo code optimized for photon and electron radiotherapy treatment planning dose calculations.

机译:DPM是一种快速,准确的蒙特卡洛代码,已针对光子和电子放射疗法治疗计划剂量计算进行了优化。

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摘要

A new Monte Carlo (MC) algorithm, the 'dose planning method' (DPM), and its associated computer program for simulating the transport of electrons and photons in radiotherapy class problems employing primary electron beams, is presented. DPM is intended to be a high accuracy MC alternative to the current generation of treatment planning codes which rely on analytical algorithms based on an approximate solution of the photon/electron Boltzmann transport equation. For primary electron beams, DPM is capable of computing 3D dose distributions (in 1 mm3 voxels) which agree to within 1% in dose maximum with widely used and exhaustively benchmarked general-purpose public-domain MC codes in only a fraction of the CPU time. A representative problem, the simulation of 1 million 10 MeV electrons impinging upon a water phantom of 128(3) voxels of 1 mm on a side, can be performed by DPM in roughly 3 min on a modern desktop workstation. DPM achieves this performance by employing transport mechanics and electron multiple scattering distribution functions which have been derived to permit long transport steps (of the order of 5 mm) which can cross heterogeneity boundaries. The underlying algorithm is a 'mixed' class simulation scheme, with differential cross sections for hard inelastic collisions and bremsstrahlung events described in an approximate manner to simplify their sampling. The continuous energy loss approximation is employed for energy losses below some predefined thresholds, and photon transport (including Compton, photoelectric absorption and pair production) is simulated in an analogue manner. The delta-scattering method (Woodcock tracking) is adopted to minimize the computational costs of transporting photons across voxels.
机译:提出了一种新的蒙特卡洛(MC)算法,“剂量规划方法”(DPM)及其相关的计算机程序,用于模拟采用初级电子束的放射治疗类问题中电子和光子的传输。 DPM旨在成为当前治疗计划代码的高精度MC替代品,后者依赖于基于光子/电子玻尔兹曼输运方程的近似解的分析算法。对于一次电子束,DPM能够计算3D剂量分布(以1 mm3体素表示),与仅在CPU时间的一小部分时间内被广泛使用并详尽地基准化的通用公共领域MC代码的最大剂量相差1%以内。 DPM可以在现代台式工作站上大约3分钟内完成一个代表性的问题,即模拟撞击在侧面1mm的128(3)体素的水幻像上的100万个10 MeV电子。 DPM通过使用传输力学和电子多重散射分布函数来实现此性能,这些函数已被推导为允许跨异质性边界的长传输步骤(约5毫米)。底层算法是“混合”类模拟方案,其中以近似方式描述了用于硬质非弹性碰撞和致冲击事件的差分横截面,以简化其采样。对于低于某些预定义阈值的能量损失,采用连续能量损失近似值,并以模拟方式模拟光子传输(包括康普顿,光电吸收和成对产生)。采用增量散射法(Woodcock跟踪)以最小化跨体素传输光子的计算成本。

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