Fisher information matrix of unipolar activation function-based multilayer perceptrons
The multilayer perceptrons (MLPs) are widely used in many fields, however, singularities in the parameter space may seriously influence the learning dynamics of MLPs and cause strange learning behaviors. Given that the singularities are the subspaces of the parameter space where the Fisher informati...
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sg-ntu-dr.10356-1399162020-05-22T08:22:24Z Fisher information matrix of unipolar activation function-based multilayer perceptrons Guo, Weili Ong, Yew-Soon Zhou, Yingjiang Hervas, Jaime Rubio Song, Aiguo Wei, Haikun School of Computer Science and Engineering Engineering::Computer science and engineering Analytical Form Fisher Information Matrix (FIM) The multilayer perceptrons (MLPs) are widely used in many fields, however, singularities in the parameter space may seriously influence the learning dynamics of MLPs and cause strange learning behaviors. Given that the singularities are the subspaces of the parameter space where the Fisher information matrix (FIM) degenerates, the FIM plays a key role in the study of the singular learning dynamics of the MLPs. In this paper, we obtain the analytical form of the FIM for unipolar activation function-based MLPs where the input subjects to the Gaussian distribution with general covariance matrix and the unipolar error function is chosen as the activation function. Then three simulation experiments are taken to verify the validity of the obtained results. 2020-05-22T08:22:24Z 2020-05-22T08:22:24Z 2018 Journal Article Guo, W., Ong, Y.-S., Zhou, Y., Hervas, J. R., Song, A., & Wei, H. (2019). Fisher information matrix of unipolar activation function-based multilayer perceptrons. IEEE Transactions on Cybernetics, 49(8), 3088-3098. doi:10.1109/TCYB.2018.2838680 2168-2267 https://hdl.handle.net/10356/139916 10.1109/TCYB.2018.2838680 29994240 2-s2.0-85048465144 8 49 3088 3098 en IEEE Transactions on Cybernetics © 2018 IEEE. All rights reserved. |
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Engineering::Computer science and engineering Analytical Form Fisher Information Matrix (FIM) Guo, Weili Ong, Yew-Soon Zhou, Yingjiang Hervas, Jaime Rubio Song, Aiguo Wei, Haikun Fisher information matrix of unipolar activation function-based multilayer perceptrons |
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The multilayer perceptrons (MLPs) are widely used in many fields, however, singularities in the parameter space may seriously influence the learning dynamics of MLPs and cause strange learning behaviors. Given that the singularities are the subspaces of the parameter space where the Fisher information matrix (FIM) degenerates, the FIM plays a key role in the study of the singular learning dynamics of the MLPs. In this paper, we obtain the analytical form of the FIM for unipolar activation function-based MLPs where the input subjects to the Gaussian distribution with general covariance matrix and the unipolar error function is chosen as the activation function. Then three simulation experiments are taken to verify the validity of the obtained results. |
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School of Computer Science and Engineering |
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School of Computer Science and Engineering Guo, Weili Ong, Yew-Soon Zhou, Yingjiang Hervas, Jaime Rubio Song, Aiguo Wei, Haikun |
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Article |
author |
Guo, Weili Ong, Yew-Soon Zhou, Yingjiang Hervas, Jaime Rubio Song, Aiguo Wei, Haikun |
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Guo, Weili |
title |
Fisher information matrix of unipolar activation function-based multilayer perceptrons |
title_short |
Fisher information matrix of unipolar activation function-based multilayer perceptrons |
title_full |
Fisher information matrix of unipolar activation function-based multilayer perceptrons |
title_fullStr |
Fisher information matrix of unipolar activation function-based multilayer perceptrons |
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Fisher information matrix of unipolar activation function-based multilayer perceptrons |
title_sort |
fisher information matrix of unipolar activation function-based multilayer perceptrons |
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2020 |
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https://hdl.handle.net/10356/139916 |
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1681059046653689856 |