| Literature DB >> 26596915 |
Joost Mathijs Verburg1, Clemens Grassberger2, Stephen Dowdell2, Jan Schuemann2, Joao Seco2, Harald Paganetti2.
Abstract
Simulations of clinical proton radiotherapy treatment plans using general purpose Monte Carlo codes have been proven to be a valuable tool for basic research and clinical studies. They have been used to benchmark dose calculation methods, to study radiobiological effects, and to develop new technologies such as in vivo range verification methods. Advancements in the availability of computational power have made it feasible to perform such simulations on large sets of patient data, resulting in a need for automated and consistent simulations. A framework called MCAUTO was developed for this purpose. Both passive scattering and pencil beam scanning delivery are supported. The code handles the data exchange between the treatment planning system and the Monte Carlo system, which requires not only transfer of plan and imaging information but also translation of institutional procedures, such as output factor definitions. Simulations are performed on a high-performance computing infrastructure. The simulation methods were designed to use the full capabilities of Monte Carlo physics models, while also ensuring consistency in the approximations that are common to both pencil beam and Monte Carlo dose calculations. Although some methods need to be tailored to institutional planning systems and procedures, the described procedures show a general road map that can be easily translated to other systems.Entities:
Keywords: Monte Carlo simulation; dose calculation; proton therapy; radiotherapy; treatment planning
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Year: 2015 PMID: 26596915 DOI: 10.1177/1533034615614139
Source DB: PubMed Journal: Technol Cancer Res Treat ISSN: 1533-0338