Range uncertainties in proton therapy and the role of Monte Carlo simulations
Неопределённости дальности в протонной терапии и роль имитационного моделирования Монте-Карло
2012-05-09
SCID: 54.1/s4ss67hs
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Monte Carlo simulationsdose calculationin vivo range verificationproton therapyrange uncertainties
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Abstract (AI)
The main advantages of proton therapy are the reduced total energy deposited in the patient as compared to photon techniques and the finite range of the proton beam. The latter adds an additional degree of freedom to treatment planning. The range in tissue is associated with considerable uncertainties caused by imaging, patient setup, beam delivery and dose calculation. Reducing the uncertainties would allow a reduction of the treatment volume and thus allow a better utilization of the advantages of protons. This paper summarizes the role of Monte Carlo simulations when aiming at a reduction of range uncertainties in proton therapy. Differences in dose calculation when comparing Monte Carlo with analytical algorithms are analyzed as well as range uncertainties due to material constants and CT conversion. Range uncertainties due to biological effects and the role of Monte Carlo for in vivo range verification are discussed. Furthermore, the current range uncertainty recipes used at several proton therapy facilities are revisited. We conclude that a significant impact of Monte Carlo dose calculation can be expected in complex geometries where local range uncertainties due to multiple Coulomb scattering will reduce the accuracy of analytical algorithms. In these cases Monte Carlo techniques might reduce the range uncertainty by several mm.
Key Findings
1
Biological effect-induced range uncertainties and in vivo range verification can be supported by Monte Carlo methods.
2
Current range uncertainty recipes at proton therapy facilities are revisited and can be informed by Monte Carlo findings.
3
Differences exist between Monte Carlo and analytical dose calculations, affecting range estimates.
4
Monte Carlo simulations can reduce range uncertainties in complex geometries where multiple Coulomb scattering degrades analytical algorithm accuracy.
5
Monte Carlo techniques might reduce range uncertainty by several millimeters in relevant clinical cases.
6
Proton therapy range in tissue has considerable uncertainties from imaging, patient setup, beam delivery, and dose calculation.
7
Range uncertainties arise from material constants and CT conversion, which Monte Carlo can help analyze.
Research Object
Range uncertainties in proton therapy
Research Subject
The contribution of Monte Carlo dose simulations to quantifying and reducing proton beam range uncertainties arising from dose calculation methods, material/CT conversion, patient setup, beam delivery, biological effects, and complex geometry/multiple Coulomb scattering, including implications for in vivo range verification
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2012-05-09
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