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Noise-Aware Training of Neuromorphic Dynamic Device Networks
by
Guru Venkat
, Branford, Will R
, Manneschi, Luca
, Gartside, Jack C
, Donskikh, Denis
, Stepney, Susan
, Swindells, Charles
, Hayward, Thomas
, Lai, Gui
, Stenning, Kilian D
, Ellis, Matthew O A
, Vidamour, Ian T
, Vasilaki, Eleni
, Sonawala, Daanish
, Griffin, David
, Hariga, Dana
in
Back propagation
/ Complex systems
/ Data processing
/ Decoupling
/ Differential equations
/ Digital twins
/ Memory devices
/ Networks
/ Task complexity
/ Training devices
2024
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Noise-Aware Training of Neuromorphic Dynamic Device Networks
by
Guru Venkat
, Branford, Will R
, Manneschi, Luca
, Gartside, Jack C
, Donskikh, Denis
, Stepney, Susan
, Swindells, Charles
, Hayward, Thomas
, Lai, Gui
, Stenning, Kilian D
, Ellis, Matthew O A
, Vidamour, Ian T
, Vasilaki, Eleni
, Sonawala, Daanish
, Griffin, David
, Hariga, Dana
in
Back propagation
/ Complex systems
/ Data processing
/ Decoupling
/ Differential equations
/ Digital twins
/ Memory devices
/ Networks
/ Task complexity
/ Training devices
2024
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Noise-Aware Training of Neuromorphic Dynamic Device Networks
by
Guru Venkat
, Branford, Will R
, Manneschi, Luca
, Gartside, Jack C
, Donskikh, Denis
, Stepney, Susan
, Swindells, Charles
, Hayward, Thomas
, Lai, Gui
, Stenning, Kilian D
, Ellis, Matthew O A
, Vidamour, Ian T
, Vasilaki, Eleni
, Sonawala, Daanish
, Griffin, David
, Hariga, Dana
in
Back propagation
/ Complex systems
/ Data processing
/ Decoupling
/ Differential equations
/ Digital twins
/ Memory devices
/ Networks
/ Task complexity
/ Training devices
2024
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Noise-Aware Training of Neuromorphic Dynamic Device Networks
Paper
Noise-Aware Training of Neuromorphic Dynamic Device Networks
2024
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Overview
Physical computing has the potential to enable widespread embodied intelligence by leveraging the intrinsic dynamics of complex systems for efficient sensing, processing, and interaction. While individual devices provide basic data processing capabilities, networks of interconnected devices can perform more complex and varied tasks. However, designing networks to perform dynamic tasks is challenging without physical models and accurate quantification of device noise. We propose a novel, noise-aware methodology for training device networks using Neural Stochastic Differential Equations (Neural-SDEs) as differentiable digital twins, accurately capturing the dynamics and associated stochasticity of devices with intrinsic memory. Our approach employs backpropagation through time and cascade learning, allowing networks to effectively exploit the temporal properties of physical devices. We validate our method on diverse networks of spintronic devices across temporal classification and regression benchmarks. By decoupling the training of individual device models from network training, our method reduces the required training data and provides a robust framework for programming dynamical devices without relying on analytical descriptions of their dynamics.
Publisher
Cornell University Library, arXiv.org
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