Parallelism in Deep Learning Accelerators

Linghao Song, Fan Chen, Yiran Chen, H. Li
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Abstract

Deep learning is the core of artificial intelligence and it achieves state-of-the-art in a wide range of applications. The intensity of computation and data in deep learning processing poses significant challenges to the conventional computing platforms. Thus, specialized accelerator architectures are proposed for the acceleration of deep learning. In this paper, we classify the design space of current deep learning accelerators into three levels, (1) processing engine, (2) memory and (3) accelerator, and present a constructive view from a perspective of parallelism in the three levels.
深度学习是人工智能的核心,它在广泛的应用中达到了最先进的水平。深度学习处理的计算强度和数据强度对传统计算平台提出了重大挑战。因此,专门的加速器架构被提出用于加速深度学习。
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