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Natural Gradient Works Efficiently in Learning

Neural Computation · 1998 · Vol. 10(2) · pp. 251–276

Abstract

When a parameter space has a certain underlying structure, the ordinary gradient of a function does not represent its steepest direction, but the natural gradient does. Information geometry is used for calculating the natural gradients in the parameter space of perceptrons, the space of matrices (for blind source separation), and the space of linear dynamical systems (for blind source deconvolution). The dynamical behavior of natural gradient online learning is analyzed and is proved to be Fisher efficient, implying that it has asymptotically the same performance as the optimal batch estimation of parameters. This suggests that the plateau phenomenon, which appears in the backpropagation learning algorithm of multilayer perceptrons, might disappear or might not be so serious when the natural gradient is used. An adaptive method of updating the learning rate is proposed and analyzed.

Blind Source Separation TechniquesNeural Networks and ApplicationsFractal and DNA sequence analysisPerceptronBackpropagationParameter spaceMathematicsGradient descentArtificial neural networkSpace (punctuation)AlgorithmGradient methodArtificial intelligence
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2,666
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References
Equivariant adaptive source separation
IEEE Transactions on Signal Processing · 1996 · 1,350 citations
Blind signal separation: statistical principles
Proceedings of the IEEE · 1998 · 1,859 citations
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