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Assessment of quantitative artificial neural network analysis in a metabolically dynamic ex vivo 31P NMR pig liver study.

Authors :
Ala-Korpela M
Changani KK
Hiltunen Y
Bell JD
Fuller BJ
Bryant DJ
Taylor-Robinson SD
Davidson BR
Source :
Magnetic resonance in medicine [Magn Reson Med] 1997 Nov; Vol. 38 (5), pp. 840-4.
Publication Year :
1997

Abstract

Quantitative artificial neural network analysis for 1550 ex vivo 31P nuclear magnetic resonance spectra from hypothermically reperfused pig livers was assessed. These spectra show wide ranges of metabolite concentrations and have been analyzed using metabolite prior knowledge based lineshape fitting analysis which had proved robust in its biochemical interpretation. This finding provided a good opportunity to assess the performance of artificial neural network analysis in a biochemically complex situation. The results showed high correlations (0.865 < or = R < or = 0.992) between the lineshape fitting and artificial neural network analysis for the metabolite values, and the artificial neural network analysis was able to fully represent the trends in the metabolic fluctuations during the experiments.

Details

Language :
English
ISSN :
0740-3194
Volume :
38
Issue :
5
Database :
MEDLINE
Journal :
Magnetic resonance in medicine
Publication Type :
Academic Journal
Accession number :
9358460
Full Text :
https://doi.org/10.1002/mrm.1910380522