Title :
Three-Dimensional Electrical Impedance Tomography: A Topology Optimization Approach
Author :
Mello, Luís Augusto Motta ; De Lima, Cícero Ribeiro ; Amato, Marcelo Britto Passos ; Lima, Raul Gonzalez ; Silva, Emílio Carlos Nelli
Author_Institution :
Univ. of Sao Paulo, Sao Paulo
Abstract :
Electrical impedance tomography is a technique to estimate the impedance distribution within a domain, based on measurements on its boundary. In other words, given the mathematical model of the domain, its geometry and boundary conditions, a nonlinear inverse problem of estimating the electric impedance distribution can be solved. Several impedance estimation algorithms have been proposed to solve this problem. In this paper, we present a three-dimensional algorithm, based on the topology optimization method, as an alternative. A sequence of linear programming problems, allowing for constraints, is solved utilizing this method. In each iteration, the finite element method provides the electric potential field within the model of the domain. An electrode model is also proposed (thus, increasing the accuracy of the finite element results). The algorithm is tested using numerically simulated data and also experimental data, and absolute resistivity values are obtained. These results, corresponding to phantoms with two different conductive materials, exhibit relatively well-defined boundaries between them, and show that this is a practical and potentially useful technique to be applied to monitor lung aeration, including the possibility of imaging a pneumothorax.
Keywords :
bioelectric phenomena; biomedical imaging; electric impedance imaging; finite element analysis; inverse problems; linear programming; lung; pneumodynamics; tomography; 3D electrical impedance tomography; electric impedance distribution; electric potential field; finite element method; linear programming; lung aeration; nonlinear inverse problem; pneumothorax imaging; topology optimization approach; Boundary conditions; Electric variables measurement; Finite element methods; Geometry; Impedance measurement; Inverse problems; Mathematical model; Optimization methods; Tomography; Topology; Electrode model; finite element method; medical imaging; three-dimensional electrical impedance tomography; topology optimization; Algorithms; Electric Impedance; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Phantoms, Imaging; Plethysmography, Impedance; Reproducibility of Results; Sensitivity and Specificity; Tomography;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2007.912637