Verification of bit-flip attacks against quantized neural networks

In the rapidly evolving landscape of neural network security, the resilience of neural networks against bit-flip attacks (i.e., an attacker maliciously flips an extremely small amount of bits within its parameter storage memory system to induce harmful behavior), has emerged as a relevant area of re...

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Main Authors: ZHANG, Yedi, HUANG, Lei, GAO, Pengfei, SONG, Fu, SUN, Jun, DONG, Jin Song
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語言:English
出版: Institutional Knowledge at Singapore Management University 2025
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在線閱讀:https://ink.library.smu.edu.sg/sis_research/10159
https://ink.library.smu.edu.sg/context/sis_research/article/11159/viewcontent/Bit_FlipAttacks_av.pdf
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