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A finite element method based neural network technique for image reconstruction in electrical impedance imaging

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IEEE

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10.1109/ibed.1998.710597
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Image reconstruction in Electrical Impedance Tomography (EIT) is a nonlinear inverse problem and typically ill-conditioned. A direct consequence of the ill-posedness is high sensitivity errors in measurements. In addition several assumptions made to reduce computational complexity are, in fact, rough approximation. This factors contribute to a limited spatial resolution and result in low accuracy in EIT images. Accordingly to improve electrical impedance images it is necessary to evaluate collected data with a new approach. This paper presents a reconstruction algorithm based neural network technique which calculates conductivity changes directly from finite-element simulations of forward problem. The advantages of this method are it's speed of image reconstruction it's conceptual simplicity, and ease of implementation.

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PROCEEDINGS OF THE 1998 2ND INTERNATIONAL CONFERENCE BIOMEDICAL ENGINEERING DAYS

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0-7803-4242-9

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