Publication:

Optimizing the Energy Consumption of Spiking Neural Networks for Neuromorphic Applications

Date

Date

Date
2020
Journal Article
Published version

Citations

Citation copied

Sorbaro, M., Liu, Q., Bortone, M., & Sheik, S. (2020). Optimizing the Energy Consumption of Spiking Neural Networks for Neuromorphic Applications. Frontiers in Neuroscience, 14, 662. https://doi.org/10.3389/fnins.2020.00662

Abstract

Abstract

Abstract

In the last few years, spiking neural networks (SNNs) have been demonstrated to perform on par with regular convolutional neural networks. Several works have proposed methods to convert a pre-trained CNN to a Spiking CNN without a significant sacrifice of performance. We demonstrate first that quantization-aware training of CNNs leads to better accuracy in SNNs. One of the benefits of converting CNNs to spiking CNNs is to leverage the sparse computation of SNNs and consequently perform equivalent computation at a lower energy consumpt

Additional indexing

Creators (Authors)

  • Sorbaro, Martino
    affiliation.icon.alt
  • Liu, Qian
    affiliation.icon.alt
  • Bortone, Massimo
    affiliation.icon.alt
  • Sheik, Sadique
    affiliation.icon.alt

Journal/Series Title

Journal/Series Title

Journal/Series Title

Volume

Volume

Volume
14

Page range/Item number

Page range/Item number

Page range/Item number
662

Item Type

Item Type

Item Type
Journal Article

Dewey Decimal Classifikation

Dewey Decimal Classifikation

Dewey Decimal Classifikation

Language

Language

Language
English

Publication date

Publication date

Publication date
2020-06-30

Date available

Date available

Date available
2021-02-16

Publisher

Publisher

Publisher

ISSN or e-ISSN

ISSN or e-ISSN

ISSN or e-ISSN
1662-453X

OA Status

OA Status

OA Status
Gold

Free Access at

Free Access at

Free Access at
Pubmed ID

PubMed ID

PubMed ID

PubMed ID

Citations

Citation copied

Sorbaro, M., Liu, Q., Bortone, M., & Sheik, S. (2020). Optimizing the Energy Consumption of Spiking Neural Networks for Neuromorphic Applications. Frontiers in Neuroscience, 14, 662. https://doi.org/10.3389/fnins.2020.00662

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