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Modelling the transport of optical photons in scintillation detectors for diagnostic and radiotherapy imaging

机译:对闪烁探测器中的光子传输建模以进行诊断和放射治疗成像

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摘要

Computational modelling of radiation transport can enhance the understanding of the relative importance of individual processes involved in imaging systems. Modelling is a powerful tool for improving detector designs in ways that are impractical or impossible to achieve through experimental measurements. Modelling of light transport in scintillation detectors used in radiology and radiotherapy imaging that rely on the detection of visible light plays an increasingly important role in detector design. Historically, researchers have invested heavily in modelling the transport of ionizing radiation while light transport is often ignored or coarsely modelled. Due to the complexity of existing light transport simulation tools and the breadth of custom codes developed by users, light transport studies are seldom fully exploited and have not reached their full potential. This topical review aims at providing an overview of the methods employed in freely available and other described optical Monte Carlo packages and analytical models and discussing their respective advantages and limitations. In particular, applications of optical transport modelling in nuclear medicine, diagnostic and radiotherapy imaging are described. A discussion on the evolution of these modelling tools into future developments and applications is presented.
机译:辐射传输的计算模型可以增强对成像系统中各个过程相对重要性的理解。建模是一种功能强大的工具,可以通过实验测量无法实现或无法实现的方式来改进检测器设计。在放射学和放射治疗成像中使用的闪烁探测器中的光传输模型依赖于可见光的探测,在探测器设计中起着越来越重要的作用。从历史上看,研究人员在模拟电离辐射的传输上投入了大量资金,而光传输通常被忽略或粗略地建模。由于现有的轻型运输模拟工具的复杂性以及用户开发的自定义代码的广泛性,很少充分利用轻型运输研究,并且尚未充分发挥其潜力。本主题回顾旨在概述可免费获得的光学蒙特卡洛软件包和其他描述的光学软件包和分析模型中使用的方法,并讨论它们各自的优点和局限性。特别地,描述了光传输模型在核医学,诊断和放射治疗成像中的应用。讨论了这些建模工具向未来开发和应用的演进。

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