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Heungsub Lee

3 papers

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papers

Publications (3)

cs.HC2023

HPCClusterScape: Increasing Transparency and Efficiency of Shared High-Performance Computing Clusters for Large-scale AI Models

Heungseok Park, Aeree Cho, Hyojun Jeon +5

The emergence of large-scale AI models, like GPT-4, has significantly impacted academia and industry, driving the demand for high-performance computing (HPC) to accelerate workload…

cs.CL2021

What Changes Can Large-scale Language Models Bring? Intensive Study on HyperCLOVA: Billions-scale Korean Generative Pretrained Transformers

Boseop Kim, HyoungSeok Kim, Sang-Woo Lee +34

GPT-3 shows remarkable in-context learning ability of large-scale language models (LMs) trained on hundreds of billion scale data. Here we address some remaining issues less report…

cs.DC2020

torchgpipe: On-the-fly Pipeline Parallelism for Training Giant Models

Chiheon Kim, Heungsub Lee, Myungryong Jeong +5

We design and implement a ready-to-use library in PyTorch for performing micro-batch pipeline parallelism with checkpointing proposed by GPipe (Huang et al., 2019). In particular,…

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