ρHammer: Reviving RowHammer Attacks on New Architectures via Prefetching
Weijie Chen, Shan Tang, Yulin Tang, Xiapu Luo, Yinqian Zhang, Weizhong Qiang
摘要
Rowhammer is a critical vulnerability in dynamic random access memory (DRAM) that continues to pose a significant threat to various systems. However, we find that conventional load-based attacks are becoming highly ineffective on the most recent architectures such as Intel Alder and Raptor Lake. In this paper, we present Hammer, a new Rowhammer framework that systematically overcomes three core challenges impeding attacks on these new architectures. First, we design an efficient and generic DRAM address mapping reverse-engineering method that uses selective pairwise measurements and structured deduction, enabling recovery of complex mappings within seconds on the latest memory controllers. Second, to break through the activation rate bottleneck of load-based hammering, we introduce a novel prefetch-based hammering paradigm that leverages the asynchronous nature of x86 prefetch instructions and is further enhanced by multi-bank parallelism to maximize throughput. Third, recognizing that speculative execution causes more severe disorder issues for prefetching, which cannot be simply mitigated by memory barriers, we develop a counter-speculation hammering technique using control-flow obfuscation and optimized NOP-based pseudo-barriers to maintain prefetch order with minimal overhead. Evaluations across four latest Intel architectures demonstrate Hammer's breakthrough effectiveness: it induces up to 200K+ additional bit flips within 2-hour attack pattern fuzzing processes and has a 112x higher flip rate than the load-based hammering baselines on Comet and Rocket Lake. Also, we are the first to revive Rowhammer attacks on the latest Raptor Lake architecture, where baselines completely fail, achieving stable flip rates of 2,291/min and fast end-to-end exploitation.
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引用它的顶会 Paper3
- PVAC: A Rowhammer Mitigation Architecture Exploiting Per-Victim-Row CountingJumin Kim, Seungmin Baek, Hwayong Nam, Minbok Wi 等ISCA 2026 · 被引用 5 次
- PuDghost: Experimental Analysis of Computation Result Corruption in Processing-Using-Dram Operations on Real Dram Chips and Implications for Future SystemsDaichi Tokuda, Ismail Emir Yüksel, Tatsuya Kubo, Ataberk Olgun 等ISCA 2026 · 被引用 4 次
- Principled Design of Indexing Functions for Memory ColoringStephan Dübler, Jana Hofmann, Boris Köpf, Stavros VolosUSENIX Security 2026
它引用的顶会 Paper47
- DRAMA: Exploiting DRAM Addressing for Cross-CPU AttacksPeter Pessl, Daniel Gruss, Clémentine Maurice, Michael Schwarz 等USENIX Security 2016 · 被引用 500 次
- Drammer: Deterministic Rowhammer Attacks on Mobile PlatformsVictor van der Veen, Yanick Fratantonio, Martina Lindorfer, Daniel Gruss 等CCS 2016 · 被引用 381 次
- Flip Feng Shui: Hammering a Needle in the Software StackKaveh Razavi, Ben Gras, Erik Bosman, Bart Preneel 等USENIX Security 2016 · 被引用 306 次
- Another Flip in the Wall of Rowhammer DefensesDaniel Gruss, Moritz Lipp, Michael Schwarz, Daniel Genkin 等S&P 2018 · 被引用 288 次
- TRRespass: Exploiting the Many Sides of Target Row RefreshPietro Frigo, Emanuele Vannacci, Hasan Hassan, Victor van der Veen 等S&P 2020 · 被引用 274 次
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