A forward error compensation approach for fault resilient deep neural network accelerator design
Deep learning accelerator is a key enabler of a variety of safety-critical applications such as self-driving car and video surveillance. However, recently reported hardware-oriented attack vectors, e.g., fault injection attacks, have extended the threats on deployed deep neural network (DNN) systems...
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Main Authors: | , |
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格式: | Conference or Workshop Item |
語言: | English |
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2022
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在線閱讀: | https://hdl.handle.net/10356/155879 |
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機構: | Nanyang Technological University |
語言: | English |
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