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FP-Rowhammer: DRAM-Based Device Fingerprinting

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arxiv 2307.00143 v2 pith:SFM5AQHA submitted 2023-06-30 cs.CR

classification cs.CR
keywords fingerprintingfp-rowhammerfingerprintsdevicestableuniqueacrossdifferent
verification ladder T0 review T1 audit T2 compute T3 formal
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Device fingerprinting leverages attributes that capture heterogeneity in hardware and software configurations to extract unique and stable fingerprints. Fingerprinting countermeasures attempt to either present a uniform fingerprint across different devices through normalization or present different fingerprints for the same device each time through obfuscation. We present FP-Rowhammer, a Rowhammer-based device fingerprinting approach that can build unique and stable fingerprints even across devices with normalized or obfuscated hardware and software configurations. To this end, FP-Rowhammer leverages the DRAM manufacturing process variation that gives rise to unique distributions of Rowhammer-induced bit flips across different DRAM modules. Our evaluation on a test bed of 98 DRAM modules shows that FP-Rowhammer achieves 99.91% fingerprinting accuracy. FP-Rowhammer's fingerprints are also stable, with no degradation in fingerprinting accuracy over a period of ten days. We also demonstrate that FP-Rowhammer is efficient, taking less than five seconds to extract a fingerprint. FP-Rowhammer is the first Rowhammer fingerprinting approach that is able to extract unique and stable fingerprints efficiently and at scale.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. HammerSim: A System-Level Tool to Model RowHammer

    cs.CR 2026-05 unverdicted novelty 6.0 of 10

    HammerSim is a gem5-based full-system framework for modeling RowHammer with probability-driven bitflip simulation, validated against real DDR4 DIMMs via JS divergence.

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