An evaluation of techniques for dose calculation on cone beam computed tomography

被引:55
作者
Giacometti, Valentina [1 ]
King, Raymond B. [1 ,2 ]
Agnew, Christina E. [2 ]
Irvine, Denise M. [2 ]
Jain, Suneil [1 ,2 ]
Hounsell, Alan R. [1 ,2 ]
McGarry, Conor K. [1 ,2 ]
机构
[1] Queens Univ Belfast, Ctr Canc Res & Cell Biol, Belfast, Antrim, North Ireland
[2] Northern Ireland Canc Ctr, Radiotherapy Phys, Belfast, Antrim, North Ireland
关键词
ADAPTIVE RADIATION-THERAPY; IMAGE REGISTRATION; CT IMAGES; RADIOTHERAPY; FEASIBILITY; RECONSTRUCTION; DOSIMETRY; ACCURACY; SYSTEM; IMRT;
D O I
10.1259/bjr.20180383
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
Objective: To assess the accuracy and efficiency of four different techniques, thus determining the optimum method for recalculating dose on cone beam CT (CBCT) images acquired during radiotherapy treatments. Methods: Four established techniques were investigated and their accuracy assessed via dose calculations: (1) applying a standard planning CT (pCT) calibration curve, (2) applying a CBCT site-specific calibration curve, (3) performing a density override and (4) using deformable registration. Each technique was applied to 15 patients receiving volumetric modulated arc therapy to one of three treatment sites, head and neck, lung and prostate. Differences between pCT and CBCT recalculations were determined with dose volume histogram metrics and 2.0%/0.1 mm gamma analysis using the pCT dose distribution as a reference. Results: Dose volume histogram analysis indicated that all techniques yielded differences from expected results between 0.0 and 2.3% for both target volumes and organs at risk. With volumetric gamma analysis, the dose recalculation on deformed images yielded the highest pass-rates. The median pass-rate ranges at 50% threshold were 99.6-99.9%, 94.6-96.0%, and 94.8.0-96.0% for prostate, head and neck and lung patients, respectively. Conclusion: Deformable registration, HU override and site-specific calibration curves were all identified as dosimetrically accurate and efficient methods for dose calculation on CBCT images. Advances in knowledge: With the increasing adoption of CBCT, this study provides clinical radiotherapy departments with invaluable information regarding the comparison of dose reconstruction methods, enabling a more accurate representation of a patient's treatment. It can also integrate studies in which CBCT is used in image-guided radiation therapy and for adaptive radiotherapy planning processes.
引用
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页数:11
相关论文
共 40 条
[11]   Feasibility of CBCT-based dose calculation: Comparative analysis of HU adjustment techniques [J].
Fotina, Irina ;
Hopfgartner, Johannes ;
Stock, Markus ;
Steininger, Thomas ;
Luetgendorf-Caucig, Carola ;
Georg, Dietmar .
RADIOTHERAPY AND ONCOLOGY, 2012, 104 (02) :249-256
[12]   Investigation into image quality and dose for different patient geometries with multiple cone-beam CT systems [J].
Gardner, Stephen J. ;
Studenski, Matthew T. ;
Giaddui, Tawfik ;
Cui, Yunfeng ;
Galvin, James ;
Yu, Yan ;
Xiao, Ying .
MEDICAL PHYSICS, 2014, 41 (03)
[13]   Automated registration of large deformations for adaptive radiation therapy of prostate cancer [J].
Godley, Andrew ;
Ahunbay, Ergun ;
Peng, Cheng ;
Li, X. Allen .
MEDICAL PHYSICS, 2009, 36 (04) :1433-1441
[14]   Automatic segmentation of thoracic and pelvic CT images for radiotherapy planning using implicit anatomic knowledge and organ-specific segmentation strategies [J].
Haas, B. ;
Coradi, T. ;
Scholz, M. ;
Kunz, P. ;
Huber, M. ;
Oppitz, U. ;
Andre, L. ;
Lengkeek, V. ;
Huyskens, D. ;
van Esch, A. ;
Reddick, R. .
PHYSICS IN MEDICINE AND BIOLOGY, 2008, 53 (06) :1751-1771
[15]   Cone beam computerized tomography: the effect of calibration of the Hounsfield unit number to electron density on dose calculation accuracy for adaptive radiation therapy [J].
Hatton, Joan ;
McCurdy, Boyd ;
Greer, Peter B. .
PHYSICS IN MEDICINE AND BIOLOGY, 2009, 54 (15) :N329-N346
[16]   Does the planning dose-volume histogram represent treatment doses in image-guided prostate radiation therapy? Assessment with cone-beam computerised tomography scans [J].
Hatton, Joan A. ;
Greer, Peter B. ;
Tang, Colin ;
Wright, Philip ;
Capp, Anne ;
Gupta, Sanjiv ;
Parker, Joel ;
Wratten, Chris ;
Denham, James W. .
RADIOTHERAPY AND ONCOLOGY, 2011, 98 (02) :162-168
[17]   Parotid Glands Dose-Effect Relationships Based on Their Actually Delivered Doses: Implications for Adaptive Replanning in Radiation Therapy of Head-and-Neck Cancer [J].
Hunter, Klaudia U. ;
Fernandes, Laura L. ;
Vineberg, Karen A. ;
McShan, Daniel ;
Antonuk, Alan E. ;
Cornwall, Craig ;
Feng, Mary ;
Schipper, Mathew J. ;
Balter, James M. ;
Eisbruch, Avraham .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2013, 87 (04) :676-682
[18]   Flat-panel cone-beam computed tomography for image-guided radiation therapy [J].
Jaffray, DA ;
Siewerdsen, JH ;
Wong, JW ;
Martinez, AA .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2002, 53 (05) :1337-1349
[19]   A radiographic and tomographic imaging system integrated into a medical linear accelerator for localization of bone and soft-tissue targets [J].
Jaffray, DA ;
Drake, DG ;
Moreau, M ;
Martinez, AA ;
Wong, JW .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1999, 45 (03) :773-789
[20]   Evaluation of nonrigid registration models for interfraction dose accumulation in radiotherapy [J].
Janssens, Guillaume ;
de Xivry, Jonathan Orban ;
Fekkes, Stein ;
Dekker, Andre ;
Macq, Benoit ;
Lambin, Philippe ;
van Elmpt, Wouter .
MEDICAL PHYSICS, 2009, 36 (09) :4268-4276