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Honest to a Fault: Root-Causing Fault Attacks with Pre-Silicon RISC Pipeline Characterization

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arxiv 2503.04846 v2 pith:EBBJEO2E submitted 2025-03-05 cs.CR cs.AR

Honest to a Fault: Root-Causing Fault Attacks with Pre-Silicon RISC Pipeline Characterization

classification cs.CR cs.AR
keywords faultattackssoftwaresystemanalysisapplicationclockcontrolled
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Fault injection attacks represent a class of threats that can compromise embedded systems across multiple layers of abstraction, such as system software, instruction set architecture (ISA), microarchitecture, and physical implementation. Early detection of these vulnerabilities and understanding their root causes along with their propagation from the physical layer to the system software is critical to secure the cyberinfrastructure. This present presents a comprehensive methodology for conducting controlled fault injection attacks at the pre-silicon level and an analysis of the underlying system for root-causing behavior. As the driving application, we use the clock glitch attacks in AI/ML applications for critical misclassification. Our study aims to characterize and diagnose the impact of faults within the RISC-V instruction set and pipeline stages, while tracing fault propagation from the circuit level to the AI/ML application software. This analysis resulted in discovering a novel vulnerability through controlled clock glitch parameters, specifically targeting the RISC-V decode stage.

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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. Divergent Multi-Version Execution (DME): Canonical Instruction-Trace Fault Detection via Structural Address-Space Decorrelation

    cs.PL 2026-05 unverdicted novelty 7.0

    DME detects faults via canonical instruction-trace comparison across semantically equivalent but address-space-diversified program replicas produced by independent compilation.