Automatic calculation of three-dimensional margins around treatment volumes in radiotherapy planning

被引:53
作者
Stroom, JC
Storchi, PRM
机构
[1] Daniel den Hoed Cancer Center, Academic Hospital Rotterdam, Department of Physics, 3075 EA Rotterdam
关键词
D O I
10.1088/0031-9155/42/4/011
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Following the publication of ICRU Report 50, the concepts of GTV (gross tumour volume), CTV (clinical target volume) and PTV (planning target volume) are being used in radiotherapy planning with increasing frequency. In 3D planning, the GTV (or CTV) is normally outlined by the clinician in CT or MRI slices. The PTV is determined by adding margins to these volumes. Since manual drawing of an accurate 3D margin in a set of 2D slices is extremely time consuming, software has been developed to automate this step in the planning. The target volume is represented in a 3D matrix grid with voxel values one inside and zero outside the target volume. It is expanded by centring an ellipsoid at every matrix element within the volume. The shape of the ellipsoid reflects the size of the margins in the three main orthogonal directions. Finally, the PTV contours are determined from the 50% iso-value lines of the expanded volume. The software tool has been in clinical use since the end of 1994 and has mostly been applied to the planning of prostate irradiations. The accuracy is better than can be achieved manually and the workload has been reduced considerably (from 4 h manually to similar to 1 min automatically).
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收藏
页码:745 / 755
页数:11
相关论文
共 16 条
  • [1] MEASUREMENT OF PROSTATE MOVEMENT OVER THE COURSE OF ROUTINE RADIOTHERAPY USING IMPLANTED MARKERS
    BALTER, JM
    SANDLER, HM
    LAM, K
    BREE, RL
    LICHTER, AS
    TENHAKEN, RK
    [J]. INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1995, 31 (01): : 113 - 118
  • [2] Target margins for random geometrical treatment uncertainties in conformal radiotherapy
    Bel, A
    vanHerk, M
    Lebesque, JV
    [J]. MEDICAL PHYSICS, 1996, 23 (09) : 1537 - 1545
  • [3] A quality control study of the accuracy of patient positioning in irradiation of pelvic fields
    Creutzberg, CL
    Althof, VGM
    deHoog, M
    Visser, AG
    Huizenga, H
    Wijnmaalen, A
    Levendag, PC
    [J]. INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1996, 34 (03): : 697 - 708
  • [4] Implications of 3-dimensional target shape and motion in aperture design
    Fontenla, E
    Pelizzari, CA
    Chen, GTY
    [J]. MEDICAL PHYSICS, 1996, 23 (08) : 1431 - 1441
  • [5] CALCULATION OF THE UNCERTAINTY IN THE DOSE DELIVERED DURING RADIATION-THERAPY
    GOITEIN, M
    [J]. MEDICAL PHYSICS, 1985, 12 (05) : 608 - 612
  • [6] NONSTANDARD DEVIATIONS
    GOITEIN, M
    [J]. MEDICAL PHYSICS, 1983, 10 (05) : 709 - 711
  • [7] GOITEIN M, 1993, 50 ICRU
  • [8] Kutcher, 1995, Semin Radiat Oncol, V5, P134, DOI 10.1016/S1053-4296(95)80006-9
  • [9] IMPLEMENTATION OF RANDOM POSITIONING ERROR IN COMPUTERIZED RADIATION TREATMENT PLANNING SYSTEMS AS A RESULT OF FRACTIONATION
    LEONG, J
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 1987, 32 (03) : 327 - 334
  • [10] OPTIMAL RADIATION BEAM PROFILES CONSIDERING UNCERTAINTIES IN BEAM PATIENT ALIGNMENT
    LIND, BK
    KALLMAN, P
    SUNDELIN, B
    BRAHME, A
    [J]. ACTA ONCOLOGICA, 1993, 32 (03) : 331 - 342