Calibration of a portal imaging device for high-precision dosimetry: A Monte Carlo study

被引:23
|
作者
Keller, H [1 ]
Fix, M [1 ]
Ruegsegger, P [1 ]
机构
[1] ETH Zurich, Inst Biomed Engn, Zurich, Switzerland
关键词
electronic portal imaging; liquid filled ionization chambers; dose calibration; Monte Carlo simulation;
D O I
10.1118/1.598378
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Today electronic portal imaging devices (EPID's) are used primarily to verify patient positioning. They have, however, also the potential as 2D-dosimeters and could be used as such for transit dosimetry or dose reconstruction. It has been proven that such devices, especially liquid filled ionization chambers, have a stable dose response relationship which can be described in terms of the physical properties of the EPID and the pulsed linac radiation. For absolute dosimetry however, an accurate method of calibration to an absolute dose is needed. In this work, we concentrate on calibration against dose in a homogeneous water phantom. Using a Monte Carlo model of the detector we calculated dose spread kernels in units of absolute dose per incident energy fluence and compared them to calculated dose spread kernels in water at different depths. The energy of the incident pencil beams varied between 0.5 and 18 MeV. At the depth of dose maximum in water for a 6 MV beam (1.5 cm) and for a Is MV beam (3.0 cm) we observed large absolute differences between water and detector dose above an incident energy of 4 MeV but only small relative differences in the most frequent energy range of the beam energy spectra. It is shown that for a 6 MV beam the absolute reference dose measured at 1.5 cm water depth differs from the absolute detector dose by 3.8%. At depth 1.2 cm in water, however, the relative dose differences are almost constant between 2 and 6 MeV. The effects of changes in the energy spectrum of the beam on the dose responses in water and in the detector are also investigated. We show that differences larger than 2% can occur for different beam qualities of the incident photon beam behind water slabs of different thicknesses. It is therefore concluded that for high-precision dosimetry such effects have to be taken into account. Nevertheless, the precise information about the dose response of the detector provided in this Monte Carlo study forms the basis of extracting directly the basic radiometric quantities photon fluence and photon energy fluence from the detector's signal using a deconvolution algorithm. The results are therefore promising for future application in absolute transit dosimetry and absolute dose reconstruction. (C) 1998 American Association of Physicists in Medicine. [S0094-2405(98)02210-X].
引用
收藏
页码:1891 / 1902
页数:12
相关论文
共 50 条
  • [31] A HIGH-PRECISION SILICON DIODE DOSIMETRY SYSTEM
    DIXON, RL
    RADIATION PROTECTION DOSIMETRY, 1986, 17 (1-4) : 303 - 306
  • [32] High-Precision Calibration Scheme for RIMU
    Cheng, Jianhua
    Liu, Ping
    Gao, Peng
    Zou, Mingfeng
    Fu, Wenhuan
    IEEE ACCESS, 2019, 7 : 72376 - 72386
  • [33] Monte Carlo study of a 60Co calibration field of the Dosimetry Laboratory Seibersdorf
    Hranitzky, C.
    Stadtmann, H.
    RADIATION PROTECTION DOSIMETRY, 2007, 125 (1-4) : 153 - 156
  • [34] Comparative Study of the Accuracy of High-Precision Angle Calibration Systems
    Kasparaitis, A.
    Barakauskas, A.
    Lazdinas, R.
    Simkevicius, A.
    MECHANIKA 2013: PROCEEDINGS OF THE 18TH INTERNATIONAL CONFERENCE, 2013, : 118 - 122
  • [35] High-precision Monte Carlo study of several models in the three-dimensional U(1) universality class
    Xu, Wanwan
    Sun, Yanan
    Lv, Jian-Ping
    Deng, Youjin
    PHYSICAL REVIEW B, 2019, 100 (06)
  • [36] DEVELOPMENT OF A MONTE CARLO BASED TECHNIQUE TO IMPROVE ACCURACY OF PORTAL DOSIMETRY
    Cufflin, R.
    Spezi, E.
    Millin, T.
    Lewis, G.
    RADIOTHERAPY AND ONCOLOGY, 2009, 92 : S212 - S212
  • [37] Electronic portal imaging device-based dosimetry
    Pinol, R. De Blas
    Farre, I. Modolell
    Olmos, C. Picon
    Kolster, I. Sancho
    Vaque, J. Puxeu
    Arroyo, M. Lizuain
    RADIOTHERAPY AND ONCOLOGY, 2007, 84 : S187 - S187
  • [38] A high-precision wavelength calibration method based on Fourier transform imaging spectrometer
    Xu, Yixuan
    Li, Jianxin
    Bai, Caixun
    Liu, Jie
    Zong, Yi
    Duan, Mingliang
    AOPC 2019: OPTICAL SPECTROSCOPY AND IMAGING, 2019, 11337
  • [39] Evaluation of an electronic portal imaging device for transit dosimetry
    He, XD
    Van Esch, A
    Reymen, R
    Huyskens, D
    ACTA ONCOLOGICA, 1999, 38 (05) : 591 - 596
  • [40] Monte Carlo simulation of the transit dosimetric response of an a-Si electronic portal imaging device
    Blake, S. J.
    McNamara, A. L.
    Vial, P.
    Holloway, L.
    Greer, P. B.
    Kuncic, Z.
    XVII INTERNATIONAL CONFERENCE ON THE USE OF COMPUTERS IN RADIATION THERAPY (ICCR 2013), 2014, 489