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Control on the Manifolds of Mappings with a View to the Deep Learning

Optimization and Control 2021-03-02 v2 Machine Learning

Abstract

Deep learning of the Artificial Neural Networks (ANN) can be treated as a particular class of interpolation problems. The goal is to find a neural network whose input-output map approximates well the desired map on a finite or an infinite training set. Our idea consists of taking as an approximant the input-output map, which arises from a nonlinear continuous-time control system. In the limit such control system can be seen as a network with a continuum of layers, each one labelled by the time variable. The values of the controls at each instant of time are the parameters of the layer.

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Cite

@article{arxiv.2008.12702,
  title  = {Control on the Manifolds of Mappings with a View to the Deep Learning},
  author = {Andrei Agrachev and Andrey Sarychev},
  journal= {arXiv preprint arXiv:2008.12702},
  year   = {2021}
}

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25 pages