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20212026
most citedGalvatron: Efficient Transformer Training over Multiple GPUs Using Automatic Parallelism

57 citations · 253 across the 32 of their papers we have counts for

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Showing 2023Show all

8 papers · 1 filter

cs.DC2023★ 3 cited

SpotServe: Serving Generative Large Language Models on Preemptible Instances

Xupeng Miao, Chunan Shi, Jiangfei Duan +4

The high computational and memory requirements of generative large language models (LLMs) make it challenging to serve them cheaply. This paper aims to reduce the monetary cost for…

cs.LG2023

Experimental Analysis of Large-scale Learnable Vector Storage Compression

Hailin Zhang, Penghao Zhao, Xupeng Miao +4

Learnable embedding vector is one of the most important applications in machine learning, and is widely used in various database-related domains. However, the high dimensionality o…

cs.IR2023

Model-enhanced Vector Index

Hailin Zhang, Yujing Wang, Qi Chen +16

Embedding-based retrieval methods construct vector indices to search for document representations that are most similar to the query representations. They are widely used in docume…

cs.LG2023★ 13 cited

Improving Automatic Parallel Training via Balanced Memory Workload Optimization

Yujie Wang, Youhe Jiang, Xupeng Miao +5

Transformer models have emerged as the leading approach for achieving state-of-the-art performance across various application domains, serving as the foundation for advanced large-…

cs.DC2023

OSDP: Optimal Sharded Data Parallel for Distributed Deep Learning

Youhe Jiang, Fangcheng Fu, Xupeng Miao +2

Large-scale deep learning models contribute to significant performance improvements on varieties of downstream tasks. Current data and model parallelism approaches utilize model re…

cs.CV2023

Accelerating Text-to-Image Editing via Cache-Enabled Sparse Diffusion Inference

Zihao Yu, Haoyang Li, Fangcheng Fu +2

Due to the recent success of diffusion models, text-to-image generation is becoming increasingly popular and achieves a wide range of applications. Among them, text-to-image editin…