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Hybrid 8-bit floating point (HFP8) training and inference for deep neural networks

Authors
Sun, XChoi, Jung wookChen, CYWang, NVenkataramani, SSrinivasan, VCui, XZhang, WGopalakrishnan, K
Issue Date
Dec-2019
Citation
Advances in Neural Information Processing Systems, v.32, pp 1 - 10
Pages
10
Indexed
SCOPUS
Journal Title
Advances in Neural Information Processing Systems
Volume
32
Start Page
1
End Page
10
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/3776
ISSN
1049-5258
Abstract
Reducing the numerical precision of data and computation is extremely effective in accelerating deep learning training workloads. Towards this end, 8-bit floating point representations (FP8) were recently proposed for DNN training. However, its applicability was only demonstrated on a few selected models and significant degradation is observed when popular networks such as MobileNet and Transformer are trained using FP8. This degradation is due to the inherent precision requirement difference in the forward and backward passes of DNN training. Using theoretical insights, we propose a hybrid FP8 (HFP8) format and DNN end-to-end distributed training procedure. We demonstrate, using HFP8, the successful training of deep learning models across a whole spectrum of applications including Image Classification, Object Detection, Language and Speech without accuracy degradation. Finally, we demonstrate that, by using the new 8 bit format, we can directly quantize a pre-trained model down to 8-bits without losing accuracy by simply fine-tuning batch normalization statistics. These novel techniques enable a new generations of 8-bit hardware that are robust for building and deploying neural network models.
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