Computational techniques for fast hyperthermia temperature optimization

被引:91
作者
Das, SK [1 ]
Clegg, ST [1 ]
Samulski, TV [1 ]
机构
[1] Duke Univ, Med Ctr, Dept Radiat Oncol, Durham, NC 27710 USA
关键词
hyperthermia; temperature; optimization; reduced order;
D O I
10.1118/1.598519
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
Hyperthermia temperature optimization involves arriving at a temperature distribution which minimizes a stated goal function, the goal function having a biological basis in maximizing tumor cell kill while not exceeding normal tissue toxicity. This involves the computationally intensive process of multiple evaluations of the temperature goal function, requiring repeated evaluations of the power deposition and its corresponding temperature distribution. Two computational schemes are proposed to expedite the temperature optimization process: (1) temperature distribution evaluation by superpositioning precomputed distributions, and (2) using representative tissue groups (rather than every point in the domain) to evaluate the goal function. The application of these schemes is illustrated with a typical optimization problem, as applied to symmetric and asymmetric, heterogeneous models. Application of these schemes reduced the optimization time on a DEC Alpha 1000 4/266 (Alpha is a registered trademark of Digital Equipment Corporation.) from several h to min, with little difference in results. The computational schemes, though demonstrated in the context of electromagnetic hyperthermia, are generally applicable to other forms of nonionizing radiation employed in hyperthermia therapy. (C) 1999 American Association of Physicists in Medicine. [S0094-2405(99)01602-8].
引用
收藏
页码:319 / 328
页数:10
相关论文
共 24 条
[1]   A comparison of reduced-order modelling techniques for application in hyperthermia control and estimation [J].
Bailey, EA ;
Dutton, AW ;
Mattingly, M ;
Devasia, S ;
Roemer, RB .
INTERNATIONAL JOURNAL OF HYPERTHERMIA, 1998, 14 (02) :135-156
[2]   SAR OPTIMIZATION IN A PHASED-ARRAY RADIOFREQUENCY HYPERTHERMIA SYSTEM [J].
BARDATI, F ;
BORRANI, A ;
GERARDINO, A ;
LOVISOLO, GA .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1995, 42 (12) :1201-1207
[3]   ANALYSIS AND OPTIMIZATION OF WAVE-GUIDE MULTIAPPLICATOR HYPERTHERMIA SYSTEMS [J].
BOAG, A ;
LEVIATAN, Y ;
BOAG, A .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1993, 40 (09) :946-952
[4]  
Chato J., 1990, Thermal Dosimetry and Treatment Planning (Clinical Thermology), P1
[5]   FINITE-ELEMENT COMPUTATION OF ELECTROMAGNETIC-FIELDS [J].
CLEGG, ST ;
MURPHY, KA ;
JOINES, WT ;
RINE, G ;
SAMULSKI, TV .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1994, 42 (10) :1984-1991
[6]   Hyperthermia treatment planning and temperature distribution reconstruction: A case study [J].
Clegg, ST ;
Das, SK ;
Fullar, E ;
Anderson, S ;
Blivin, J ;
Oleson, JR ;
Samulski, TV .
INTERNATIONAL JOURNAL OF HYPERTHERMIA, 1996, 12 (01) :65-76
[7]   SIMULATION OF ELECTROMAGNETICALLY INDUCED HYPERTHERMIA - A FINITE-ELEMENT GRIDDING METHOD [J].
DAS, SK ;
CLEGG, ST ;
ANSCHER, MS ;
SAMULSKI, TV .
INTERNATIONAL JOURNAL OF HYPERTHERMIA, 1995, 11 (06) :797-808
[8]   Analysis of thermal parameters obtained during Phase III trials of hyperthermia as an adjunct to radiotherapy in the treatment of breast carcinoma [J].
Hand, JW ;
Machin, D ;
Vernon, CC ;
Whaley, JB .
INTERNATIONAL JOURNAL OF HYPERTHERMIA, 1997, 13 (04) :343-364
[9]   THERMAL-TREATMENT PARAMETERS ARE MOST PREDICTIVE OF OUTCOME IN PATIENTS WITH SINGLE TUMOR NODULES PER TREATMENT FIELD IN RECURRENT ADENOCARCINOMA OF THE BREAST [J].
KAPP, DS ;
COX, RS .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1995, 33 (04) :887-899
[10]   FINITE-ELEMENT SOLUTION OF MAXWELL EQUATIONS FOR HYPERTHERMIA TREATMENT PLANNING [J].
LYNCH, DR ;
PAULSEN, KD ;
STROHBEHN, JW .
JOURNAL OF COMPUTATIONAL PHYSICS, 1985, 58 (02) :246-269