A new concept of pencil beam dose calculation for 40-200 keV photons using analytical dose kernels

被引:20
|
作者
Bartzsch, Stefan [1 ,2 ]
Oelfke, Uwe [1 ,2 ]
机构
[1] Deutsch Krebsforschungszentrum, D-69120 Heidelberg, Germany
[2] Inst Canc Res, Sutton SM2 5NG, Surrey, England
关键词
dose calculation; point dose kernels; microbeam radiation therapy; MONTE-CARLO SIMULATIONS; MICROBEAM RADIATION-THERAPY; X-RAYS; DISTRIBUTIONS; TRANSPORT; DENSITY; ARRAYS; TISSUE;
D O I
10.1118/1.4824150
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
Purpose: The advent of widespread kV-cone beam computer tomography in image guided radiation therapy and special therapeutic application of keV photons, e.g., in microbeam radiation therapy (MRT) require accurate and fast dose calculations for photon beams with energies between 40 and 200 keV. Multiple photon scattering originating from Compton scattering and the strong dependence of the photoelectric cross section on the atomic number of the interacting tissue render these dose calculations by far more challenging than the ones established for corresponding MeV beams. That is why so far developed analytical models of kV photon dose calculations fail to provide the required accuracy and one has to rely on time consuming Monte Carlo simulation techniques. Methods: In this paper, the authors introduce a novel analytical approach for kV photon dose calculations with an accuracy that is almost comparable to the one of Monte Carlo simulations. First, analytical point dose and pencil beam kernels are derived for homogeneous media and compared to Monte Carlo simulations performed with the Geant4 toolkit. The dose contributions are systematically separated into contributions from the relevant orders of multiple photon scattering. Moreover, approximate scaling laws for the extension of the algorithm to inhomogeneous media are derived. Results: The comparison of the analytically derived dose kernels in water showed an excellent agreement with the Monte Carlo method. Calculated values deviate less than 5% from Monte Carlo derived dose values, for doses above 1% of the maximum dose. The analytical structure of the kernels allows adaption to arbitrary materials and photon spectra in the given energy range of 40-200 keV. Conclusions: The presented analytical methods can be employed in a fast treatment planning system for MRT. In convolution based algorithms dose calculation times can be reduced to a few minutes. (C) 2013 American Association of Physicists in Medicine.
引用
收藏
页数:15
相关论文
共 40 条
  • [1] The use of modified single pencil beam dose kernels to improve IMRT dose calculation accuracy
    Bergman, AM
    Otto, K
    Duzenli, C
    MEDICAL PHYSICS, 2004, 31 (12) : 3279 - 3287
  • [2] Independent Dose Calculation in FFF Modulated Fields with Pencil Beam Kernels Obtained by Deconvolution
    Azcona, J.
    Burguete, J.
    MEDICAL PHYSICS, 2014, 41 (06) : 271 - 271
  • [3] HOW SYSTEMATIC ARE DOSE CALCULATION ERRORS WITH PENCIL KERNELS FOR LUNG TREATMENT PLANNING WITH 6 MV PHOTONS?
    Ahnesjo, A.
    Morhed, E.
    Nilsson, K.
    Isacsson, U.
    RADIOTHERAPY AND ONCOLOGY, 2008, 88 : S274 - S274
  • [4] Dose Calibration and Integral Depth Dose Correction of An Analytical Dose Calculation Algorithm for Collimated Pencil Beam Scanning Proton Therapy
    Bennett, L.
    Erhart, K.
    Nelson, N.
    Yu, J.
    Gutierrez, A.
    Rana, S.
    Smith, B.
    Hill, P.
    Hyer, D.
    Geoghegan, T.
    Patwardhan, K.
    Culberson, W.
    Flynn, R.
    MEDICAL PHYSICS, 2022, 49 (06) : E857 - E857
  • [5] VERIFICATION OF PHOTON DOSE CALCULATION ACCURACY BY THE PENCIL BEAM AND ANALYTICAL ANISOTROPIC ALGORITHM USING MOSFET DETECTORS
    Swinnen, A.
    Nulens, A.
    Verstraete, J.
    Van den Heuvel, F.
    RADIOTHERAPY AND ONCOLOGY, 2008, 88 : S414 - S414
  • [6] A Fast Finite Size Pencil Beam Algorithm for Dose Calculation Using GPUs
    Arhjoul, L.
    Jinag, L.
    Solberg, T.
    Despres, P.
    Mao, W.
    MEDICAL PHYSICS, 2012, 39 (06) : 4020 - 4021
  • [7] Calculation of the absorbed dose distribution due to irregularly shaped photon beams using pencil beam kernels derived from basic beam data
    Storchi, P
    Woudstra, E
    PHYSICS IN MEDICINE AND BIOLOGY, 1996, 41 (04): : 637 - 656
  • [8] Point dose calculations using an analytical pencil beam kernel for IMRT plan checking
    Watanabe, Y
    PHYSICS IN MEDICINE AND BIOLOGY, 2001, 46 (04): : 1031 - 1038
  • [9] CALCULATION OF DOSE DISTRIBUTIONS FOR OBLIQUE-INCIDENCE USING A PENCIL BEAM MODEL OF THE ESSEN NEUTRON BEAM
    MEISSNER, P
    STRAHLENTHERAPIE, 1984, 160 (02) : 116 - 118
  • [10] Fast Pencil Beam Dose calculation for Proton Therapy Using a Double-Gaussian Beam Model
    da Silva, Joakim
    Ansorge, Richard
    Jena, Rajesh
    FRONTIERS IN ONCOLOGY, 2015, 5