A Comprehensive Evaluation of Novel AI Accelerators for Deep Learning Workloads
A Comprehensive Evaluation of Novel AI Accelerators for Deep Learning Workloads
复制标题
针对深度学习工作负载的新型人工智能加速器的综合评估
DOI:
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复制
发表时间:
2022
期刊:
影响因子:
--
通讯作者:
Matthew Boyd
中科院分区:
文献类型:
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作者:
M. Emani;Zhen Xie;Siddhisanket Raskar;Varuni K. Sastry;William Arnold;Bruce Wilson;R. Thakur;V. Vishwanath;Zhengchun Liu;M. Papka;Cindy Orozco Bohorquez;Rickey C. Weisner;Karen Li;Yongning Sheng;Yun Du;Jian Zhang;A. Tsyplikhin;Gurdaman S. Khaira;J. Fowers;R. Sivakumar;Victoria Godsoe;Adrián Macías;Chetan Tekur;Matthew Boyd
Scientific applications are increasingly adopting Artificial Intelligence (AI) techniques to advance science. High-performance computing centers are evaluating emerging novel hardware accelerators to efficiently run AI-driven science applications. With a wide diversity in the hardware architectures and software stacks of these systems, it is challenging to understand how these accelerators perform. The state-of-the-art in the evaluation of deep learning workloads primarily focuses on CPUs and GPUs. In this paper, we present an overview of dataflow-based novel AI accelerators from SambaNova, Cerebras, Graphcore, and Groq. We present a first-of-a-kind evaluation of these accelerators with diverse workloads, such as Deep Learning (DL) primitives, benchmark models, and scientific machine learning applications. We also evaluate the performance of collective communication, which is key for distributed DL implementation, along with a study of scaling efficiency. We then discuss key insights, challenges, and opportunities in integrating these novel AI accelerators in supercomputing systems.
DOI:
10.1109/micro50266.2020.00058
发表时间:
2020-09
期刊:
2020 53rd Annual IEEE/ACM International Symposium on Microarchitecture (MICRO)
影响因子:
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作者:
Sheng-Chun Kao;Geonhwa Jeong;T. Krishna
通讯作者:
Sheng-Chun Kao;Geonhwa Jeong;T. Krishna
影响因子:
3.6
作者:
Kwon, Hyoukjun;Chatarasi, Prasanth;Sarkar, Vivek;Krishna, Tushar;Pellauer, Michael;Parashar, Angshuman
通讯作者:
Parashar, Angshuman