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Expressive power of first-order recurrent neural networks determined by their attractor dynamics - MaRDI portal

Expressive power of first-order recurrent neural networks determined by their attractor dynamics (Q736603)

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scientific article; zbMATH DE number 6609206
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English
Expressive power of first-order recurrent neural networks determined by their attractor dynamics
scientific article; zbMATH DE number 6609206

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    Expressive power of first-order recurrent neural networks determined by their attractor dynamics (English)
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    4 August 2016
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    The present study provides a novel theoretical approach to the crucial role that attractors and spatio-temporal patterns of discharges play in the computational capabilities of neural networks and, more generally, in the processing and coding of information in the brain. It establishes a link between the attractor dynamics of the networks, their spatio-temporal patterns of discharge, and their ability to perform more or less intricate discrimination tasks.
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    recurrent neural networks
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    neural computation
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    analog computation
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    evolving systems
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    learning
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    attractors
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    spatio-temporal patterns
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    Turing machines
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    expressive power
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