Enabling Training of Neural Networks on Noisy Hardware

Tayfun Gokmen

DOI: 10.3389/frai.2021.699148

Journal: Frontiers in Artificial Intelligence

An end-to-end training and model extraction technique for extremely noisy crossbar-based analog hardware that can be used to accelerate DNN training workloads and match the performance of full-precision SGD.

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Journal Info

Journals:

ISSN 2624-8212

Quartile

CategoryQuartile
COMPUTER SCIENCE, INFORMATION SYSTEMS2
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