Monte Carlo dose verification for intensity-modulated arc therapy
- 3 August 2001
- journal article
- Published by IOP Publishing in Physics in Medicine & Biology
- Vol. 46 (9) , 2269-2282
- https://doi.org/10.1088/0031-9155/46/9/301
Abstract
Intensity-modulated arc therapy (IMAT), a technique which combines beam rotation and dynamic multileaf collimation, has been implemented in our clinic. Dosimetric errors can be created by the inability of the planning system to accurately account for the effects of tissue inhomogeneities and physical characteristics of the multileaf collimator (MLC). The objective of this study is to explore the use of Monte Carlo (MC) simulation for IMAT dose verification. The BEAM/DOSXYZ Monte Carlo system was implemented to perform dose verification for the IMAT treatment. The implementation includes the simulation of the linac head/MLC (Elekta SL20), the conversion of patient CT images and beam arrangement for 3D dose calculation, the calculation of gantry rotation and leaf motion by a series of static beams and the development of software to automate the entire MC process. The MC calculations were verified by measurements for conventional beam settings. The agreement was within 2%. The IMAT dose distributions generated by a commercial forward planning system (RenderPlan. Elekta) were compared with those calculated by the MC package. For the cases studied, discrepancies of over 10% were found between the MC and the RenderPlan dose calculations. These discrepancies were due in part to the inaccurate dose calculation of the RenderPlan system. The computation time for the IMAT MC calculation was in the range of 20-80 min on 15 Pentium-Ill computers. The MC method was also useful in verifying the beam apertures used in the IMAT treatments.Keywords
This publication has 18 references indexed in Scilit:
- Monte Carlo dose calculations for dynamic IMRT treatmentsPhysics in Medicine & Biology, 2001
- Monte Carlo dose computation for IMRT optimization*Physics in Medicine & Biology, 2000
- Use of Monte Carlo computation in benchmarking radiotherapy treatment planning system algorithmsPhysics in Medicine & Biology, 2000
- Dose enhancement by a thin foil of high‐Zmaterial: A Monte Carlo studyMedical Physics, 1999
- A CT‐based Monte Carlo simulation tool for dosimetry planning and analysisMedical Physics, 1998
- X-ray field compensation with multileaf collimatorsInternational Journal of Radiation Oncology*Biology*Physics, 1994
- Characterization of a multileaf collimator systemInternational Journal of Radiation Oncology*Biology*Physics, 1993
- The generation of intensity-modulated fields for conformal radiotherapy by dynamic collimationPhysics in Medicine & Biology, 1992
- Optimization of stationary and moving beam radiation therapy techniquesRadiotherapy and Oncology, 1988
- Presta: The parameter reduced electron-step transport algorithm for electron monte carlo transportNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 1986