A New Non-Convex Framework to Improve Asymptotical Knowledge on Generic Stochastic Gradient Descent

Author:

Fest Jean-Baptiste1,Repetti Audrey2,Chouzenoux Émilie1

Affiliation:

1. CVN, CentraleSupélec, Inria, Université Paris-Saclay, 9 rue Joliot Curie,Gif-sur-Yvette,France

2. Heriot-Watt University,School of Engineering & Physical Sciences, School of Mathematical & Computer Schiences,Edinburgh,UK,EH14 4AS

Funder

European Research Council

Publisher

IEEE

Reference34 articles.

1. Stochastic forward-backward and primal-dual approximation algorithms with application to online image restoration

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4. Finito: A faster, permutable incremental gradient method for big data problems;defazio;Proc of the International Conference on Machine Learning (ICML),2014

5. SAGA: a fast incremental gradient method with support for non-strongly convex composite objectives;defazio;Advances in neural information processing systems,2014

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