On Training Efficiency and Computational Costs of a Feed Forward Neural Network: A Review

Author:

Laudani Antonino1,Lozito Gabriele Maria1,Riganti Fulginei Francesco1,Salvini Alessandro1

Affiliation:

1. Department of Engineering, Roma Tre University, Via Vito Volterra 62, 00146 Rome, Italy

Abstract

A comprehensive review on the problem of choosing a suitable activation function for the hidden layer of a feed forward neural network has been widely investigated. Since the nonlinear component of a neural network is the main contributor to the network mapping capabilities, the different choices that may lead to enhanced performances, in terms of training, generalization, or computational costs, are analyzed, both in general-purpose and in embedded computing environments. Finally, a strategy to convert a network configuration between different activation functions without altering the network mapping capabilities will be presented.

Publisher

Hindawi Limited

Subject

General Mathematics,General Medicine,General Neuroscience,General Computer Science

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