Learning cell for superconducting neural networks

An energy-efficient adiabatic learning neuro cell is proposed. The cell can be used for on-chip learning of adiabatic superconducting artificial neural networks. The static and dynamic characteristics of the proposed learning cell have been investigated. Optimization of the learning cell parameters...

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Veröffentlicht in:Superconductor science & technology 2021-01, Vol.34 (1), p.15006
Hauptverfasser: Schegolev, Andrey, Klenov, Nikolay, Soloviev, Igor, Tereshonok, Maxim
Format: Artikel
Sprache:eng
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Zusammenfassung:An energy-efficient adiabatic learning neuro cell is proposed. The cell can be used for on-chip learning of adiabatic superconducting artificial neural networks. The static and dynamic characteristics of the proposed learning cell have been investigated. Optimization of the learning cell parameters was performed within simulations of the multi-layer neural network supervised learning with the resilient propagation method.
ISSN:0953-2048
1361-6668
DOI:10.1088/1361-6668/abc569