Improving DNN Hardware Accuracy by In-Memory Computing Noise Injection

IEEE Design & Test(2022)

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摘要
Like any other designs, in-memory computing (IMC) also suffers from operational inaccuracy induced by hardware noise. In this work, the authors propose to take into account hardware noises during the deep neural network (DNN) training in order to improve the DNN inference accuracy.
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关键词
In-memory computing,deep neural network,noise injection,hardware-aware training
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