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Approximate Fisher Information Matrix to Characterize the Training of Deep Neural Networks
Journal article   Peer reviewed

Approximate Fisher Information Matrix to Characterize the Training of Deep Neural Networks

Zhibin Liao, Tom Drummond, Ian Reid and Gustavo Carneiro
IEEE transactions on pattern analysis and machine intelligence, Vol.42(1), pp.15-26
01/01/2020
PMID: 30334782

Abstract

Computational modeling Convergence deep learning Fisher information matrix Linear programming Machine learning neural network training characterisation Neural networks stochastic gradient descent Testing Training

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