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Andreas Pfadler

1 accepted papers

2020

Learning Efficient Parameter Server Synchronization Policies for Distributed SGD

ICLR 2020poster

We apply a reinforcement learning (RL) based approach to learning optimal synchronization policies used for Parameter Server-based distributed training of machine learning models with Stochastic Gradient Descent (SGD). Utilizing a formal synchronization policy description in the PS-setting, we are a…

Cited by 10SourceScholar