An anatomy-based beam segmentation tool for intensity-modulated radiation therapy and its application to head-and-neck cancer

被引:77
作者
De Gersem, W [1 ]
Claus, F [1 ]
De Wagter, C [1 ]
De Neve, W [1 ]
机构
[1] State Univ Ghent Hosp, Div Radiotherapy, B-9000 Ghent, Belgium
来源
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS | 2001年 / 51卷 / 03期
关键词
IMRT; anatomy-based beam segmentation;
D O I
10.1016/S0360-3016(01)01727-8
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: In segmental intensity-modulated radiation therapy (IMRT), the beam fluences result from superposition of unmodulated beamlets (segments). In the inverse planning approach, segments are a result of "clipping" intensity maps. At Ghent University Hospital, segments are created by an anatomy-based segmentation tool (ABST). The objective of this report is to describe ABST. Methods and Materials: For each beam direction, ABST generates segments by a multistep procedure. During the initial steps, beam's eye view (BEV) projections of the planning target volumes (PTVs) and organs at risk (OARs) are generated. These projections are used to make a segmentation grid with negative values across the expanded OAR projections and positive values elsewhere inside the expanded PTV projections. Outside these regions, grid values are set to zero. Subsequent steps transform the positive values of the segmentation grid to increase with decreasing distance to the OAR projections and to increase with longer pathlengths measured along rays from their entrance point through the skin contours to their respective grid point The final steps involve selection of iso-value lines of the segmentation grid as segment outlines which are transformed to leaf and jaw positions of a multileaf collimator (MLC). Segment shape approximations, if imposed by MLC constraints, are done in a way that minimizes overlap between the expanded OAR projections and the segment aperture. Results: The ABST procedure takes about 3 s/segment on a Compaq Alpha XP900 workstation. In IMRT planning problems with little complexity, such as laryngeal (example shown) or thyroid cancer, plans that are in accordance with the clinical protocol can be generated by weighting the segments generated by ABST without further optimization of their shapes. For complex IMRT plans such as paranasal sinus cancer (not shown), ABST generates a start assembly of segments from which the shapes and weights are further optimized. Conclusions: ABST is a fast procedure to generate a set of segments for IMRT planning. The plan is finalized by assigning weights to the segments or by direct optimization of segment shapes and weights. ABST allows us to avoid the step of translating optimized intensity maps to sequences of segments. (C) 2001 Elsevier Science Inc.
引用
收藏
页码:849 / 859
页数:11
相关论文
共 21 条
[1]   SOLUTION OF AN INTEGRAL-EQUATION ENCOUNTERED IN ROTATION THERAPY [J].
BRAHME, A ;
ROOS, JE ;
LAX, I .
PHYSICS IN MEDICINE AND BIOLOGY, 1982, 27 (10) :1221-1229
[2]  
Brent R, 1973, ALGORITHM MINIMIZATI
[3]   FITTING OF NORMAL TISSUE TOLERANCE DATA TO AN ANALYTIC-FUNCTION [J].
BURMAN, C ;
KUTCHER, GJ ;
EMAMI, B ;
GOITEIN, M .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1991, 21 (01) :123-135
[4]   An implementation strategy for IMRT of ethmoid sinus cancer with bilateral sparing of the optic pathways [J].
Claus, F ;
De Gersem, W ;
De Wagter, C ;
Van Severen, R ;
Vanhoutte, I ;
Duthoy, W ;
Remouchamps, V ;
Van Duyse, B ;
Vakaet, L ;
Lemmerling, M ;
Vermeersch, H ;
De Neve, W .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2001, 51 (02) :318-331
[5]  
De Gersem W., 2000, Radiotherapy and Oncology, V56, pS96
[6]  
De Neve W, 1996, Bull Cancer Radiother, V83, P401
[7]   Clinical delivery of intensity modulated conformal radiotherapy for relapsed or second-primary head and neck cancer using a multileaf collimator with dynamic control [J].
De Neve, W ;
De Gersem, W ;
Derycke, S ;
De Meerleer, G ;
Moerman, M ;
Bate, MT ;
Van Duyse, B ;
Vakaet, L ;
De Deene, Y ;
Mersseman, B ;
De Wagter, C .
RADIOTHERAPY AND ONCOLOGY, 1999, 50 (03) :301-314
[8]   3D conformal intensity-modulated radiotherapy planning: interactive optimization by constrained matrix inversion [J].
De Wagter, C ;
Colle, CO ;
Fortan, LG ;
Van Duyse, BB ;
Van den Berge, DL ;
De Neve, WJ .
RADIOTHERAPY AND ONCOLOGY, 1998, 47 (01) :69-76
[9]   Planning and delivering high doses to targets surrounding the spinal cord at the lower neck and upper mediastinal levels: Static beam-segmentation technique executed with a multileaf collimator [J].
DeNeve, W ;
DeWagter, C ;
DeJaeger, K ;
Thienpont, M ;
Colle, C ;
Derycke, S ;
Schelfhout, J .
RADIOTHERAPY AND ONCOLOGY, 1996, 40 (03) :271-279
[10]   Conformal radiotherapy of stage III non-small cell lung cancer: A class solution involving non-coplanar intensity-modulated beams [J].
Derycke, S ;
De Gersem, WRT ;
Van Duyse, BBR ;
De Neve, WCJ .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1998, 41 (04) :771-777