A Image Reconstruction Using Simulated Annealing in Electrical Impedance Tomograghy
H C Kim, Chang-Jin Boo, Y J Lee
Abstract
H C Kim, Chang-Jin Boo, Y J Lee
Abstract
In electrical impedance tomography(EIT), various image reconstruction algorithms have been used in order to compute the internal resistivity distribution of the unknown object with its electric potential data at the boundary. Mathematically the EIT image reconstruction algorithm is a nonlinear ill-posed inverse problem. This paper presents a simulated annealing technique as a statistical reconstruction algorithm for the solution of the static EIT inverse problem. Computer simulations with the 32 channels synthetic data show that the spatial resolution of reconstructed images by the proposed scheme is improved as compared to that of the mNR algorithm or genetic algorithm at the expense of increased computational burden. (author). 7 refs., 4 figs., 2 tabs.
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In electrical impedance tomography(EIT), various image reconstruction algorithms have been used in order to compute the internal resistivity distribution of the unknown object with its electric potential data at the boundary. Mathematically the EIT image reconstruction algorithm is a nonlinear ill-posed inverse problem. This paper presents a simulated annealing technique as a statistical reconstruction algorithm for the solution of the static EIT inverse problem. Computer simulations with the 32 channels synthetic data show that the spatial resolution of reconstructed images by the proposed scheme is improved as compared to that of the mNR algorithm or genetic algorithm at the expense of increased computational burden. (author). 7 refs., 4 figs., 2 tabs.
Key concepts: Electrical impedance tomography, Inverse problem, Iterative reconstruction, Simulated annealing, Algorithm, Tomography, Image resolution, Computer science