Title :
Optimizing Electrode Placement Using Finite-Element Models in Radiofrequency Ablation Treatment Planning
Author :
Chen, Chun-Cheng R. ; Miga, Michael I. ; Galloway, Robert L., Jr.
Author_Institution :
Dept. of Biomed. Eng., Vanderbilt Univ., Nashville, TN
Abstract :
Conventional radiofrequency ablation (RFA) planning methods for identifying suitable electrode placements typically use geometric shapes to model ablation outcomes. A method is presented for searching electrode placements that couples finite-element models (FEMs) of RFA together with a novel optimization strategy. The method was designed to reduce the need for model solutions per local search step. The optimization strategy was tested against scenarios requiring single and multiple ablations. In particular, for a scenario requiring multiple ablations, a domain decomposition strategy was described to minimize the complexity of simultaneously searching multiple electrode placements. The effects of nearby vasculature on optimal electrode placement were also studied. Compared with geometric planning approaches, FEMs could potentially deliver electrode placement plans that provide more physically meaningful predictions of therapeutic outcomes.
Keywords :
biomedical electrodes; finite element analysis; hyperthermia; minimisation; radiation therapy; domain decomposition strategy; electrode placement; finite element models; minimization; optimization; radiofrequency ablation treatment planning; Biomedical engineering; Electrodes; Finite element methods; Heat treatment; Neoplasms; Optimization methods; Predictive models; Radio frequency; Shape; Solid modeling; Temperature; Finite-element methods; optimization; radiofrequency ablation (RFA); treatment planning; Algorithms; Catheter Ablation; Computer Simulation; Electrodes; Finite Element Analysis; Humans; Liver; Liver Neoplasms; Models, Biological; Temperature; Thermodynamics;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2008.2010383