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Parallel-Distributed Implementation of the Lipizzaner Framework for Multiobjective Coevolutionary Training of Generative Adversarial Networks

  • Sergio Nesmachnow,
  • Jamal Toutouh,
  • Guillermo Ripa,
  • Agustín Mautone,
  • Andrés Vidal

摘要

This article presents a parallel-distributed implementation of the Lipizzaner framework for multiobjective coevolutionary Generative Adversarial Networks training. A specific design is proposed following the messagge passing paradigm to execute in high performance computing infrastructures. The implementation is validated for the generation of handwritten digits problems. Accurate efficiency and scalability results, and a proper load balancing are reported.