Efficient electro-magnetic analysis of a GPU bitsliced AES implementation

被引:0
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作者
Yiwen Gao
Yongbin Zhou
Wei Cheng
机构
[1] State Key Laboratory of Information Security,
[2] Institute of Information Engineering,undefined
[3] Chinese Academy of Sciences,undefined
[4] School of Cyber Security,undefined
[5] University of Chinese Academy of Sciences,undefined
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关键词
GPU-based cryptographic implementations; Side-channel analysis (SCA); Electro-magnetic attacks (EMA); Micro-architectural vulnerabilities; Combinational analysis;
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摘要
The advent of CUDA-enabled GPU makes it possible to provide cloud applications with high-performance data security services. Unfortunately, recent studies have shown that GPU-based applications are also susceptible to side-channel attacks. These published work studied the side-channel vulnerabilities of GPU-based AES implementations by taking the advantage of the cache sharing among multiple threads or high parallelism of GPUs. Therefore, for GPU-based bitsliced cryptographic implementations, which are immune to the cache-based attacks referred to above, only a power analysis method based on the high-parallelism of GPUs may be effective. However, the leakage model used in the power analysis is not efficient at all in practice. In light of this, we investigate electro-magnetic (EM) side-channel vulnerabilities of a GPU-based bitsliced AES implementation from the perspective of bit-level parallelism and thread-level parallelism in order to make the best of the localization effect of EM leakage with parallelism. Specifically, we propose efficient multi-bit and multi-thread combinational analysis techniques based on the intrinsic properties of bitsliced ciphers and the effect of multi-thread parallelism of GPUs, respectively. The experimental result shows that the proposed combinational analysis methods perform better than non-combinational and intuitive ones. Our research suggests that multi-thread leakages can be used to improve attacks if the multi-thread leakages are not synchronous in the time domain.
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