Optimization of accelerator target and detector for portal imaging using Monte Carlo simulation and experiment

被引:34
作者
Flampouri, S [1 ]
Evans, PM
Verhaegen, F
Nahum, AE
Spezi, E
Partridge, M
机构
[1] Inst Canc Res, Sutton, Surrey, England
[2] Natl Phys Lab, Ctr Ionising Radiat Metrol, Teddington TW11 0LW, Middx, England
[3] Velindre Hosp, Cardiff, S Glam, Wales
关键词
D O I
10.1088/0031-9155/47/18/305
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Megavoltage portal images suffer from poor quality compared to those produced with kilovoltage x-rays. Several authors have shown that the image quality can be improved by modifying the linear accelerator to generate more low-energy photons. This work addresses the problem of using Monte Carlo simulation and experiment to optimize the beam and detector combination to maximize image quality for a given patient thickness. A simple model of the whole imaging chain was developed for investigation of the effect of the target parameters on the quality of the image. The optimum targets (6 mm thick aluminium and 1.6 mm copper) were installed in an Elekta SL25 accelerator. The first beam will be referred to as A16 and the second as Cu1.6. A tissue-equivalent contrast phantom was imaged with the 6 MV standard photon beam and the experimental beams with standard radiotherapy and mammography film/screen systems. The arrangement with a thin Al target/mammography system improved the contrast from 1.4 cm bone in 5 cm water to 19% compared with 2% for the standard arrangement of a thick, high-Z target/radiotherapy verification system. The linac/phantom/detector system was simulated with the BEAM/EGS4 Monte Carlo code. Contrast calculated from the predicted images was in good agreement with the experiment (to within 2.5%). The use of MC techniques to predict images accurately, taking into account the whole imaging system, is a powerful new method for portal imaging system design optimization.
引用
收藏
页码:3331 / 3349
页数:19
相关论文
共 18 条
[1]   HIGH-ENERGY X-RAY-FILM RESPONSE AND THE INTENSIFYING ACTION OF METAL SCREENS [J].
BARNEA, G ;
GINZBURG, A .
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1987, 34 (06) :1580-1585
[2]   A convolution model to convert transmission dose images to exit dose distributions [J].
Boellaard, R ;
vanHerk, M ;
Mijnheer, BJ .
MEDICAL PHYSICS, 1997, 24 (02) :189-199
[3]   LOW-ENERGY IMAGING WITH HIGH-ENERGY BREMSSTRAHLUNG BEAMS [J].
GALBRAITH, DM .
MEDICAL PHYSICS, 1989, 16 (05) :734-746
[4]   X-RAY SCATTER IN MEGAVOLTAGE TRANSMISSION RADIOGRAPHY - PHYSICAL CHARACTERISTICS AND INFLUENCE ON IMAGE QUALITY [J].
JAFFRAY, DA ;
BATTISTA, JJ ;
FENSTER, A ;
MUNRO, P .
MEDICAL PHYSICS, 1994, 21 (01) :45-60
[5]   Monte Carlo simulations of the imaging performance of metal plate/phosphor screens used in radiotherapy [J].
Kausch, C ;
Schreiber, B ;
Kreuder, F ;
Schmidt, R ;
Dössel, O .
MEDICAL PHYSICS, 1999, 26 (10) :2113-2124
[6]   Monte Carlo studies of metal/phosphor screen in therapeutic X-ray imaging [J].
Kim, HK ;
Cho, GS ;
Chung, YH ;
Lee, HK ;
Yoon, SC .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1999, 422 (1-3) :713-717
[7]   Determination of effective electron source size using multislit and pinhole cameras) [J].
Lief, EP ;
Lutz, WR .
MEDICAL PHYSICS, 2000, 27 (10) :2372-2375
[8]   EVALUATION OF A BEAM-SPOT CAMERA FOR MEGAVOLTAGE X-RAYS [J].
LUTZ, WR ;
MALEKI, N ;
BJARNGARD, BE .
MEDICAL PHYSICS, 1988, 15 (04) :614-617
[9]  
MA CM, 1996, 5096 NRCC PIRS
[10]   LOW-ENERGY IMAGING WITH HIGH-ENERGY BREMSSTRAHLUNG BEAMS - ANALYSIS AND SCATTER REDUCTION [J].
MAH, DW ;
GALBRAITH, DM ;
RAWLINSON, JA .
MEDICAL PHYSICS, 1993, 20 (03) :653-665