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Efficient parallel implementation of multilayer backpropagation networks on SpiNNaker

Published: 17 May 2010 Publication History

Abstract

This paper presents an efficient implementation and performance analysis of mapping multilayer perceptron networks with the backpropagation learning rule on SpiNNaker - a massively parallel architecture dedicated for neural network simulation. A new algorithm called pipelined checker-boarding partitioning scheme is proposed for efficient mapping. The new mapping algorithm relies on a checker-board partitioning scheme, but the key advantage comes from introducing a pipelined mode. The six-stage pipelined mode captures the parallelism within each partition of the weight matrix, allowing the overlapping of communication and computation. Not only does the proposed mapping localize communication, but it can also hide a part of or even all the communication for high efficiency.

Cited By

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  • (2018)Understanding a Deep Learning Technique through a Neuromorphic System a Case Study with SpiNNaker Neuromorphic PlatformMATEC Web of Conferences10.1051/matecconf/201816401015164(01015)Online publication date: 23-Apr-2018
  • (2016)Deep Artificial Neural Networks and Neuromorphic Chips for Big Data Analysis: Pharmaceutical and Bioinformatics ApplicationsInternational Journal of Molecular Sciences10.3390/ijms1708131317:8(1313)Online publication date: 11-Aug-2016
  • (2013)Computation of Backpropagation Learning Algorithm Using Neuron Machine ArchitectureProceedings of the 2013 Fifth International Conference on Computational Intelligence, Modelling and Simulation10.1109/CIMSim.2013.13(23-28)Online publication date: 24-Sep-2013
  • Show More Cited By

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  1. Efficient parallel implementation of multilayer backpropagation networks on SpiNNaker

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      Published In

      cover image ACM Conferences
      CF '10: Proceedings of the 7th ACM international conference on Computing frontiers
      May 2010
      370 pages
      ISBN:9781450300445
      DOI:10.1145/1787275
      Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the Owner/Author.

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      Association for Computing Machinery

      New York, NY, United States

      Publication History

      Published: 17 May 2010

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      Author Tags

      1. backpropagation
      2. mapping
      3. mlp
      4. parallel
      5. pipeline
      6. spinnaker

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      CF'10
      Sponsor:
      CF'10: Computing Frontiers Conference
      May 17 - 19, 2010
      Bertinoro, Italy

      Acceptance Rates

      CF '10 Paper Acceptance Rate 30 of 113 submissions, 27%;
      Overall Acceptance Rate 273 of 785 submissions, 35%

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      Cited By

      View all
      • (2018)Understanding a Deep Learning Technique through a Neuromorphic System a Case Study with SpiNNaker Neuromorphic PlatformMATEC Web of Conferences10.1051/matecconf/201816401015164(01015)Online publication date: 23-Apr-2018
      • (2016)Deep Artificial Neural Networks and Neuromorphic Chips for Big Data Analysis: Pharmaceutical and Bioinformatics ApplicationsInternational Journal of Molecular Sciences10.3390/ijms1708131317:8(1313)Online publication date: 11-Aug-2016
      • (2013)Computation of Backpropagation Learning Algorithm Using Neuron Machine ArchitectureProceedings of the 2013 Fifth International Conference on Computational Intelligence, Modelling and Simulation10.1109/CIMSim.2013.13(23-28)Online publication date: 24-Sep-2013
      • (2011)Managing Burstiness and Scalability in Event-Driven Models on the SpiNNaker Neuromimetic SystemInternational Journal of Parallel Programming10.1007/s10766-011-0180-740:6(553-582)Online publication date: 23-Jul-2011

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