Incorporating dynamic collimator motion in Monte Carlo simulations: an application in modelling a dynamic wedge
- 21 December 2000
- journal article
- research article
- Published by IOP Publishing in Physics in Medicine & Biology
- Vol. 46 (2) , 287-296
- https://doi.org/10.1088/0031-9155/46/2/302
Abstract
In radiation therapy, new treatment modalities employing dynamic collimation and intensity modulation increase the complexity of dose calculation because a new dimension, time, has to be incorporated into the traditional three-dimensional problem. In this work, we investigated two classes of sampling technique to incorporate dynamic collimator motion in Monte Carlo simulation. The methods were initially evaluated for modelling enhanced dynamic wedges (EDWs) from Varian accelerators (Varian Medical Systems, Palo Alto, USA). In the position-probability-sampling or PPS method, a cumulative probability distribution function (CPDF) was computed for the collimator position, which could then be sampled during simulations. In the static-component-simulation or SCS method, a dynamic field is approximated by multiple static fields in a step-shoot fashion. The weights of the particles or the number of particles simulated for each component field are computed from the probability distribution function (PDF) of the collimator position. The CPDF and PDF were computed from the segmented treatment tables (STTs) for the EDWs. An output correction factor had to be applied in this calculation to account for the backscattered radiation affecting monitor chamber readings. Comparison of the phase-space data from the PPS method (with the step-shoot motion) with those from the SCS method showed excellent agreement. The accuracy of the PPS method was further verified from the agreement between the measured and calculated dose distributions. Compared to the SCS method, the PPS method is more automated and efficient from an operational point of view. The principle of the PPS method can be extended to simulate other dynamic motions, and in particular, intensity-modulated beams using multileaf collimators.Keywords
This publication has 7 references indexed in Scilit:
- Backscatter towards the monitor ion chamber in high-energy photon and electron beams: charge integration versus Monte Carlo simulationPhysics in Medicine & Biology, 2000
- Modeling photon output caused by backscattered radiation into the monitor chamber from collimator jaws using a Monte Carlo techniqueMedical Physics, 2000
- Monte Carlo modelling of a virtual wedgePhysics in Medicine & Biology, 1999
- Clinical implementation of a Monte Carlo treatment planning systemMedical Physics, 1999
- Measurement of backscatter to the monitor chamber of medical accelerators using target chargeMedical Physics, 1998
- A CT‐based Monte Carlo simulation tool for dosimetry planning and analysisMedical Physics, 1998
- BEAM: A Monte Carlo code to simulate radiotherapy treatment unitsMedical Physics, 1995