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GQLink: an implementation of Quantized State Systems (QSS) methods in Geant4

机译:GQLink:Geant4中的量化状态系统(QSS)方法的实现

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Simulations in high energy physics (HEP) often require the numerical solution of ordinary differential equations (ODE) to determine the trajectories of charged particles in a magnetic field when particles move throughout detector volumes. Each crossing of a volume interrupts the underlying numerical method that solves the equations of motion, triggering iterative algorithms to estimate the intersection point within a given accuracy. The computational cost of this procedure can grow significantly depending on the application at hand. Quantized State System (QSS) is a recent family of discrete-event driven numerical methods exhibiting attractive features for this type of problems, such as native dense output (sequences of polynomial segments updated only by accuracy-driven events) and lightweight detection and handling of volume crossings. In this work we present GQLink, a proof-of-concept integration of QSS with the Geant4 simulation toolkit which stands as an interface for co-simulation that orchestrates robustly and transparently the interaction between the QSS simulation engine and aspects such as geometry definition and physics processes controlled by Geant4. We validate the accuracy and study the performance of the method in simple geometries (subject to intense volume crossing activity) and then in a realistic HEP application using a full CMS detector configuration.
机译:高能物理(HEP)中的模拟通常需要使用常微分方程(ODE)的数值解来确定当粒子在整个探测器体积中移动时磁场中带电粒子的轨迹。体积的每次相交都会中断解决运动方程的基础数值方法,从而触发迭代算法以估算给定精度内的相交点。此过程的计算成本可能会大大增加,具体取决于手头的应用程序。量化状态系统(QSS)是离散事件驱动的数值方法的最新家族,它显​​示出针对此类问题的吸引人的功能,例如本机密集输出(多项式分段的序列仅通过精度驱动的事件进行更新)以及轻量级的检测和处理穿越量。在这项工作中,我们介绍了GQLink,这是QSS与Geant4仿真工具包的概念验证集成,它是共同仿真的界面,可以稳健而透明地协调QSS仿真引擎与几何定义和物理等方面之间的交互。 Geant4控制的流程。我们验证了方法的准确性,并研究了该方法在简单几何形状(受强烈的体积交叉活动影响)中的性能,然后在使用完整CMS检测器配置的实际HEP应用中进行了研究。

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