Real-World Snapshots vs. Theory: Questioning the t-Probing Security Model
Thilo Krachenfels, Fatemeh Ganji, Amir Moradi, Shahin Tajik, Jean-Pierre Seifert
摘要
Due to its sound theoretical basis and practical efficiency, masking has become the most prominent countermeasure to protect cryptographic implementations against physical side-channel attacks (SCAs). The core idea of masking is to randomly split every sensitive intermediate variable during computation into at least t+1 shares, where t denotes the maximum number of shares that are allowed to be observed by an adversary without learning any sensitive information. In other words, it is assumed that the adversary is bounded either by the possessed number of probes (e.g., microprobe needles) or by the order of statistical analyses while conducting higher-order SCA attacks (e.g., differential power analysis). Such bounded models are employed to prove the SCA security of the corresponding implementations. Consequently, it is believed that given a sufficiently large number of shares, the vast majority of known SCA attacks are mitigated.In this work, we present a novel laser-assisted SCA technique, called Laser Logic State Imaging (LLSI), which offers an unlimited number of contactless probes, and therefore, violates the probing security model assumption. This technique enables us to take snapshots of hardware implementations, i.e., extract the logical state of all registers at any arbitrary clock cycle with a single measurement. To validate this, we mount our attack on masked AES hardware implementations and practically demonstrate the extraction of the full-length key in two different scenarios. First, we assume that the location of the registers (key and/or state) is known, and hence, their content can be directly read by a single snapshot. Second, we consider an implementation with unknown register locations, where we make use of multiple snapshots and a SAT solver to reveal the secrets.
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引用它的顶会 Paper7
- Automatic Extraction of Secrets from the Transistor Jungle using Laser-Assisted Side-Channel AttacksThilo Krachenfels, Tuba Kiyan, Shahin Tajik, Jean-Pierre SeifertUSENIX Security 2021 · 被引用 40 次
- Effective and Efficient Masking with Low Noise Using Small-Mersenne-Prime CiphersLoïc Masure, Pierrick Méaux, Thorben Moos, François-Xavier StandaertEUROCRYPT 2023 · 被引用 20 次
- LeakyOhm: Secret Bits Extraction using Impedance AnalysisSaleh Khalaj Monfared, Tahoura Mosavirik, Shahin TajikCCS 2023 · 被引用 13 次
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- On Borrowed Time - Preventing Static Side-Channel AnalysisRobert Dumitru, Thorben Moos, Andrew Wabnitz, Yuval YaromNDSS 2025
它引用的顶会 Paper4
- Strong Non-Interference and Type-Directed Higher-Order MaskingGilles Barthe, Sonia Belaïd, François Dupressoir, Pierre-Alain Fouque 等CCS 2016 · 被引用 302 次
- On the Power of Optical Contactless Probing: Attacking Bitstream Encryption of FPGAsShahin Tajik, Heiko Lohrke, Jean-Pierre Seifert, Christian BoitCCS 2017 · 被引用 116 次
- One&Done: A Single-Decryption EM-Based Attack on OpenSSL's Constant-Time Blinded RSAMonjur Alam, Haider Adnan Khan, Moumita Dey, Nishith Sinha 等USENIX Security 2018 · 被引用 62 次
- The Unpatchable Silicon: A Full Break of the Bitstream Encryption of Xilinx 7-Series FPGAsMaik Ender, Amir Moradi, Christof PaarUSENIX Security 2020
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