后量子kem中的多值明文校验侧信道攻击

Yutaro Tanaka, Rei Ueno, Keita Xagawa, Akira Ito, J. Takahashi, N. Homma
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引用次数: 7

摘要

本文提出了一种基于Fujisaki-Okamoto (FO)变换及其变体的密钥封装机制的侧信道分析(SCA)。许多后量子密钥管理系统通常在密钥解封装过程中进行重新加密,以实现选择密文攻击(CCA)的安全性。即使安全地实现了构造KEM的选择明文攻击(CCA)安全解密,也可以利用重新加密的侧信道泄漏来安装密钥恢复明文检查攻击(KR-PCA)。在此,我们提出了一种有效的侧信道辅助KR-PCA,用于后量子kem,并在TCHES 2022和2023中实现了攻击痕迹明显少于现有攻击痕迹的密钥恢复。该攻击的基本思想是引入一种新的基于多值(MV-)PC预测的KR-PCA,然后基于多分类神经网络(NN)实现一个专用的MV-PC预测。提出的攻击适用于NIST PQC选择的算法Kyber和类似的基于格子的Saber, FrodoKEM和NTRU Prime,以及SIKE。我们还介绍了如何从非100%准确的NN模型输出中实现足够可靠的MV-PC预言,并分析了关键恢复成功率和攻击痕迹数量之间的权衡。我们通过对三个典型对称原语的攻击实验来评估所提出攻击的可行性,以实例化随机oracle (SHAKE, SHA3和AES软件)。在99.9999%的密钥恢复成功率的条件下,与现有针对Kyber和其他基于格子的kem的攻击相比,所提出的攻击将可靠密钥恢复所需的攻击痕迹数量减少了87%。提出的攻击还可以将SIKE的攻击痕迹数量减少85%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple-Valued Plaintext-Checking Side-Channel Attacks on Post-Quantum KEMs
In this paper, we present a side-channel analysis (SCA) on key encapsulation mechanisms (KEMs) based on the Fujisaki–Okamoto (FO) transformation and its variants. Many post-quantum KEMs usually perform re-encryption during key decapsulation to achieve chosen-ciphertext attack (CCA) security. The side-channel leakage of re-encryption can be exploited to mount a key-recovery plaintext-checking attack (KR-PCA), even if the chosen-plaintext attack (CCA) secure decryption constructing the KEM is securely implemented. Herein, we propose an efficient side-channel-assisted KR-PCA on post-quantum KEMs, and achieve a key recovery with significantly fewer attack traces than existing ones in TCHES 2022 and 2023. The basic concept of the proposed attack is to introduce a new KR-PCA based on a multiple-valued (MV-)PC oracle and then implement a dedicated MV-PC oracle based on a multi-classification neural network (NN). The proposed attack is applicable to the NIST PQC selected algorithm Kyber and the similar lattice-based Saber, FrodoKEM and NTRU Prime, as well as SIKE. We also present how to realize a sufficiently reliable MV-PC oracle from NN model outputs that are not 100% accurate, and analyze the tradeoff between the key recovery success rate and the number of attack traces. We assess the feasibility of the proposed attack through attack experiments on three typical symmetric primitives to instantiate a random oracle (SHAKE, SHA3, and AES software). The proposed attack reduces the number of attack traces required for a reliable key recovery by up to 87% compared to the existing attacks against Kyber and other lattice-based KEMs, under the condition of 99.9999% success rate for key recovery. The proposed attack can also reduce the number of attack traces by 85% for SIKE.
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