Published April 2008 | Version v1
Journal article

The impact of MLC transmitted radiation on EPID dosimetry for dynamic MLC beams

  • 1. Institute of Medical Physics, School of Physics, University of Sydney, Sydney (Australia)
  • 2. Royal North Shore Hospital, Sydney (Australia) and Institute of Medical Physics, School of Physics, University of Sydney, Sydney (Australia)
  • 3. Royal North Shore Hospital, Sydney (Australia)
  • 4. Calvary Mater Newcastle Hospital, Newcastle, Australia and University of Newcastle, Newcastle (Australia)
  • 5. Institute of Medical Physics, School of Physics, University of Sydney, Sydney (Australia) and Department of Radiation Oncology, Liverpool Hospital, Sydney (Australia)

Description

The purpose of this study was to experimentally quantify the change in response of an amorphous silicon (a-Si) electronic portal imaging device (EPID) to dynamic multileaf collimator (dMLC) beams with varying MLC-transmitted dose components and incorporate the response into a commercial treatment planning system (TPS) EPID prediction model. A combination of uniform intensity dMLC beams and static beams were designed to quantify the effect of MLC transmission on EPID response at the central axis of 10x10 cm2 beams, at off-axis positions using wide dMLC beam profiles, and at different field sizes. The EPID response to MLC transmitted radiation was 0.79±0.02 of the response to open beam radiation at the central axis of a 10x10 cm2 field. The EPID response to MLC transmitted radiation was further reduced relative to the open beam response with off-axis distance. The EPID response was more sensitive to field size changes for MLC transmitted radiation compared to open beam radiation by a factor of up to 1.17 at large field sizes. The results were used to create EPID response correction factors as a function of the fraction of MLC transmitted radiation, off-axis distance, and field size. Software was developed to apply the correction factors to each pixel in the TPS predicted EPID image. The corrected images agreed more closely with the measured EPID images in areas of intensity modulated fields with a large fraction of MLC transmission and, as a result the accuracy of portal dosimetry with a-Si EPIDs can be improved. Further investigation into the detector response function and the radiation source model are required to achieve improvements in accuracy for the general case

Additional details

Identifiers

Publishing Information

Journal Title
Medical Physics
Journal Volume
35
Journal Issue
4
Journal Page Range
p. 1267-1277
ISSN
0094-2405
CODEN
MPHYA6

INIS

Country of Publication
United States
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
40003156
Subject category
S62: RADIOLOGY AND NUCLEAR MEDICINE; S61: RADIATION PROTECTION AND DOSIMETRY;
Descriptors DEI
ACCURACY; BEAM PROFILES; COLLIMATORS; COMPUTER CODES; DOSIMETRY; IMAGES; RADIATION DOSES; RADIATION SOURCES; RESPONSE FUNCTIONS; SEMICONDUCTOR MATERIALS; SILICON
Descriptors DEC
DOSES; ELEMENTS; FUNCTIONS; MATERIALS; SEMIMETALS

Optional Information

Notes
(c) 2008 American Association of Physicists in Medicine