نتایج جستجو برای: Backpropagation

تعداد نتایج: 7478  

2012
Zulhadi Zakaria

This paper reports the study results on neural network training algorithm of numerical optimization techniques multiface detection in static images. The training algorithms involved are scale gradient conjugate backpropagation, conjugate gradient backpropagation with Polak-Riebre updates, conjugate gradient backpropagation with Fletcher-Reeves updates, one secant backpropagation and resilent ba...

Journal: :IEEE Transactions on Communications 2014

1992
Arnfried Ossen

Self-supervised backpropagation is an unsupervised learning procedure for feedforward networks , where the desired output vector is identical with the input vector. For backpropagation, we are able to use powerful simulators running on parallel machines. Topology-preserving maps, on the other hand, can be developed by a variant of the competitive learning procedure. However , in a degenerate ca...

1991
Petri Koistinen Lasse Holmström

One method proposed for improving the generalization capability of a feedforward network trained with the backpropagation algorithm is to use artificial training vectors which are obtained by adding noise to the original training vectors. We discuss the connection of such backpropagation training with noise to kernel density and kernel regression estimation. We compare by simulated examples (1)...

1990
Paul J. Werbos

Backpropagation is now the most widely used tool in the field of artificial neural networks. At the core of backpropagation is a method for calculating derivatives exactly and efficiently in any large system made up of elementary subsystems or calculations which are represented by known, differentiable functions; thus, backpropagation has many applications which do not involve neural networks a...

1991
B. Widrow R. Timothy Edwards

This paper presents a derivation of a training algorithm for backpropagation neural networks which operate upon time-dependent input data, called “temporal backpropagation.” The derivation uses transformation rules to generate the algorithm directly from the standard backpropagation algorithm. Issues encountered when training time-delay neural networks are discussed, and a number of examples ar...

Journal: :Nature Reviews Neuroscience 2020

Journal: :Biological Cybernetics 1993

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