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Saturn: Efficient Multi-Large-Model Deep Learning (2311.02840v1)

Published 6 Nov 2023 in cs.LG, cs.AI, and cs.DC

Abstract: In this paper, we propose Saturn, a new data system to improve the efficiency of multi-large-model training (e.g., during model selection/hyperparameter optimization). We first identify three key interconnected systems challenges for users building large models in this setting -- parallelism technique selection, distribution of GPUs over jobs, and scheduling. We then formalize these as a joint problem, and build a new system architecture to tackle these challenges simultaneously. Our evaluations show that our joint-optimization approach yields 39-49% lower model selection runtimes than typical current DL practice.

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Authors (2)
  1. Kabir Nagrecha (6 papers)
  2. Arun Kumar (78 papers)