GPU-based fast Monte Carlo simulation for radiotherapy dose calculation
Xun Jia, Xuejun Gu, Yan Jiang Graves, Michael Folkerts, Steve B. Jiang

TL;DR
This paper introduces gDPM v2.0, a GPU-accelerated Monte Carlo dose calculation tool for radiotherapy that achieves high efficiency and accuracy, enabling rapid dose computations for clinical treatment plans.
Contribution
The paper presents a GPU-based Monte Carlo dose calculation package that maintains accuracy while significantly improving computational speed for radiotherapy applications.
Findings
Achieves speed-up factors of 69.1 to 87.2 times over CPU.
Maintains less than 1% relative uncertainty in dose calculations.
Completes realistic IMRT and VMAT dose calculations in under 40 seconds.
Abstract
Monte Carlo (MC) simulation is commonly considered to be the most accurate dose calculation method in radiotherapy. However, its efficiency still requires improvement for many routine clinical applications. In this paper, we present our recent progress towards the development a GPU-based MC dose calculation package, gDPM v2.0. It utilizes the parallel computation ability of a GPU to achieve high efficiency, while maintaining the same particle transport physics as in the original DPM code and hence the same level of simulation accuracy. In GPU computing, divergence of execution paths between threads can considerably reduce the efficiency. Since photons and electrons undergo different physics and hence attain different execution paths, we use a simulation scheme where photon transport and electron transport are separated to partially relieve the thread divergence issue. High performance…
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