DocumentCode :
2751200
Title :
Regularized modified Newton Raphson algorithm for electrical impedance tomography based on the exponentially weighted least square criterion
Author :
Kim, Kyung Youn ; Kim, Bong Seok ; Kim, Min Chan ; Lee, Jung Hoon ; Park, Jae Woo ; Lee, Yoon Joon ; Choi, Young Bok
Author_Institution :
Cheju Nat. Univ., South Korea
Volume :
1
fYear :
2000
fDate :
2000
Firstpage :
64
Abstract :
In EIT (electrical impedance tomography), the internal resistivity (or conductivity) distribution of the unknown object is estimated using the boundary voltage data induced by different current patterns using various reconstruction algorithms. In this paper, we present a regularized modified Newton-Raphson (mNR) scheme which employs additional a priori information in the cost functional as soft constraint and the weighting matrices in the cost functional are selected based on the exponentially weighted least square criterion. The computer simulation for the 32 channels of synthetic data shows that the reconstruction performance of the proposed scheme is improved compared to that of the conventional regularized mNR at the expense of slightly increased computational burden
Keywords :
Newton-Raphson method; electric impedance imaging; image reconstruction; least squares approximations; matrix algebra; mesh generation; EIT; boundary voltage data; conductivity; cost functional; current patterns; electrical impedance tomography; exponentially weighted least square criterion; internal resistivity; mNR scheme; reconstruction algorithms; reconstruction performance; regularized modified Newton Raphson algorithm; weighting matrices; Cities and towns; Conductivity; Cost function; Image reconstruction; Impedance; Least squares methods; Matrix decomposition; Reconstruction algorithms; Tomography; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
TENCON 2000. Proceedings
Conference_Location :
Kuala Lumpur
Print_ISBN :
0-7803-6355-8
Type :
conf
DOI :
10.1109/TENCON.2000.893541
Filename :
893541
Link To Document :
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