Distributed Model Training based on Data Parallelism in Edge Computing-enabled Elastic Optical Networks

IEEE Communications Letters(2021)

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摘要
The emergence of edge computing provides an effective solution to execute distributed model training (DMT). The deployment of training data among edge nodes affects the training efficiency and network resource usage. This letter aims for the efficient provisioning of DMT services by optimizing the partition and distribution of training data in edge computing-enabled optical networks. An integer li...
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关键词
Training,Training data,Task analysis,Computational modeling,Data models,Parallel processing,Optical fiber networks
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