Pencil Beam Approach for Correcting the Energy Dependence Artifact in Film Dosimetry for IMRT Verification
Overview
Affiliations
The higher sensitivity to low-energy scattered photons of radiographic film compared to water can lead to significant dosimetric error when the beam quality varies significantly within a field. Correcting for this artifact will provide greater accuracy for intensity modulated radiation therapy (IMRT) verification dosimetry. A procedure is developed for correction of the film energy-dependent response by creating a pencil beam kernel within our treatment planning system to model the film response specifically. Film kernels are obtained from EGSnrc Monte Carlo simulations of the dose distribution from a 1 mm diameter narrow beam in a model of the film placed at six depths from 1.5 to 40 cm in polystyrene and solid water phantoms. Kernels for different area phantoms (50 x 50 cm2 and 25 x 25 cm2 polystyrene and 30 x 30 cm2 solid water) are produced. The Monte Carlo calculated kernel is experimentally verified with film, ion chamber and thermoluminescent dosimetry (TLD) measurements in polystyrene irradiated by a narrow beam. The kernel is then used in convolution calculations to, predict the film response in open and IMRT fields. A 6 MV photon beam and Kodak XV2 film in a polystyrene phantom are selected to test the method as they are often used in practice and can result in large energy-dependent artifacts. The difference in dose distributions calculated with the film kernel and the water kernel is subtracted from film measurements to obtain a practically film artifact free IMRT dose distribution for the Kodak XV2 film. For the points with dose exceeding 5 cGy (11% of the peak dose) in a large modulated field and a film measurement inside a large polystyrene phantom at depth of 10 cm, the correction reduces the fraction of pixels for which the film dose deviates from dose to water by more than 5% of the mean film dose from 44% to 6%.
Li H, Driewer J, Han Z, Low D, Yang D, Xiao Z Phys Med Biol. 2014; 59(8):1899-909.
PMID: 24651448 PMC: 4019811. DOI: 10.1088/0031-9155/59/8/1899.
Hsu S, Kulasekere R, Roberson P J Appl Clin Med Phys. 2010; 11(4):3172.
PMID: 21081874 PMC: 5720412. DOI: 10.1120/jacmp.v11i4.3172.
Zheng Y, Han Z, Driewer J, Low D, Li H Med Phys. 2010; 37(1):146-53.
PMID: 20175476 PMC: 2801734. DOI: 10.1118/1.3271338.
Quantitative megavoltage radiation therapy dosimetry using the storage phosphor KCl: Eu2+.
Han Z, Driewer J, Zheng Y, Low D, Li H Med Phys. 2009; 36(8):3748-57.
PMID: 19746808 PMC: 2724175. DOI: 10.1118/1.3171687.
Characterization and clinical evaluation of a novel IMRT quality assurance system.
Sadagopan R, Bencomo J, Martin R, Nilsson G, Matzen T, Balter P J Appl Clin Med Phys. 2009; 10(2):104-119.
PMID: 19458595 PMC: 5720456. DOI: 10.1120/jacmp.v10i2.2928.