Reducing uncertainties in volumetric image based deformable organ registration

被引:44
作者
Liang, J [1 ]
Yan, D [1 ]
机构
[1] William Beaumont Hosp, Dept Radiat Oncol, Royal Oak, MI 48073 USA
关键词
image based deformable organ registration; biomechanical model and FEM; consuming energy minimization; organ boundary point correspondence;
D O I
10.1118/1.1587631
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 [临床医学]; 100207 [影像医学与核医学]; 1009 [特种医学];
摘要
Applying volumetric image feedback in radiotherapy requires image based deformable organ registration. The foundation of this registration is the ability of tracking. subvolume displacement in organs of interest. Subvolume displacement can be calculated by applying biomechanics model and the finite element method to human organs manifested on the multiple volumetric images. The calculation accuracy, however, is highly dependent on the determination of the corresponding organ boundary points. Lacking sufficient information for such determination, uncertainties are inevitable-thus diminishing the registration accuracy. In this paper, a method of consuming energy minimization was developed to reduce these uncertainties. Starting from an initial selection of organ boundary point correspondence on volumetric image sets, the subvolume displacement and stress distribution of the whole organ are calculated and the consumed energy due to the subvolume displacements is computed accordingly. The corresponding positions of the initially selected boundary points are then iteratively optimized to minimize the consuming energy under geometry and stress constraints. In this study, a rectal wall delineated from patient CT image was artificially deformed using a computer simulation and utilized to test the optimization. Subvolume displacements calculated based on the optimized boundary point correspondence were compared to the true displacements, and the calculation accuracy was thereby evaluated. Results demonstrate that a significant improvement on the accuracy of the deformable organ registration can be achieved by applying the consuming energy minimization in the organ deformation calculation. (C) 2003 American Association of Physicists in Medicine.
引用
收藏
页码:2116 / 2122
页数:7
相关论文
共 9 条
[1]
Image-based dose planning of intracavitary brachytherapy: Registration of serial-imaging studies using deformable anatomic templates [J].
Christensen, GE ;
Carlson, B ;
Chao, KSC ;
Yin, P ;
Grigsby, PW ;
Nguyen, K ;
Dempsey, JF ;
Lerma, FA ;
Bae, KT ;
Vannier, MW ;
Williamson, JF .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2001, 51 (01) :227-243
[2]
DUCK FA, 1990, PHYSICAL PROPERTY TI
[3]
Fung C, 1993, BIOMECHANICS MECH PR
[4]
Fung YC., 1993, 1 COURSE CONTINUUM M
[5]
A computational model for tracking subsurface tissue deformation during stereotactic neurosurgery [J].
Paulsen, KD ;
Miga, MI ;
Kennedy, FE ;
Hoopes, PJ ;
Hartov, A ;
Roberts, DW .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1999, 46 (02) :213-225
[6]
Vanderplaats G. N., 1984, NUMERICAL OPTIMIZATI
[7]
A model to accumulate fractionated dose in a deforming organ [J].
Yan, D ;
Jaffray, DA ;
Wong, JW .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1999, 44 (03) :665-675
[8]
Organ/patient geometric variation in external beam radiotherapy and its effects [J].
Yan, D ;
Lockman, D .
MEDICAL PHYSICS, 2001, 28 (04) :593-602
[9]
Zienkiewicz OC., 1977, The finite element method