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Improved SpikeProp for Using Particle Swarm Optimization

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  • Falah Y. H. Ahmed
  • Siti Mariyam Shamsuddin
  • Siti Zaiton Mohd Hashim

Abstract

A spiking neurons network encodes information in the timing of individual spike times. A novel supervised learning rule for SpikeProp is derived to overcome the discontinuities introduced by the spiking thresholding. This algorithm is based on an error-backpropagation learning rule suited for supervised learning of spiking neurons that use exact spike time coding. The SpikeProp is able to demonstrate the spiking neurons that can perform complex nonlinear classification in fast temporal coding. This study proposes enhancements of SpikeProp learning algorithm for supervised training of spiking networks which can deal with complex patterns. The proposed methods include the SpikeProp particle swarm optimization (PSO) and angle driven dependency learning rate. These methods are presented to SpikeProp network for multilayer learning enhancement and weights optimization. Input and output patterns are encoded as spike trains of precisely timed spikes, and the network learns to transform the input trains into target output trains. With these enhancements, our proposed methods outperformed other conventional neural network architectures.

Suggested Citation

  • Falah Y. H. Ahmed & Siti Mariyam Shamsuddin & Siti Zaiton Mohd Hashim, 2013. "Improved SpikeProp for Using Particle Swarm Optimization," Mathematical Problems in Engineering, Hindawi, vol. 2013, pages 1-13, September.
  • Handle: RePEc:hin:jnlmpe:257085
    DOI: 10.1155/2013/257085
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    Cited by:

    1. Miner-Romanoff, Karen, 2023. "Bigs in Blue: Police officer mentoring for middle-school students—Building trust and understanding through structured programming," Evaluation and Program Planning, Elsevier, vol. 97(C).

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