Withdrawing the BGP Re-Routing Curtain: Understanding the Security Impact of BGP Poisoning through Real-World Measurements
Jared M. Smith, Kyle Birkeland, Tyler McDaniel, Max Schuchard
Abstract
The security of the Internet's routing infrastructure has underpinned much of the past two decades of distributed systems security research. However, the converse is increasingly true. Routing and path decisions are now important for the security properties of systems built on top of the Internet. In particular, BGP poisoning leverages the de facto routing protocol between Autonomous Systems (ASes) to maneuver the return paths of upstream networks onto previously unusable, new paths. These new paths can be used to avoid congestion, censors, geo-political boundaries, or any feature of the topology which can be expressed at an AS-level. Given the increase in BGP poisoning usage as a security primitive, we set out to evaluate poisoning feasibility in practice beyond simulation. To that end, using an Internet-scale measurement infrastructure, we capture and analyze over 1,400 instances of BGP poisoning across thousands of ASes as a mechanism to maneuver return paths of traffic. We analyze in detail the performance of steering paths, the graph-theoretic aspects of available paths, and re-evaluate simulated systems with this data. We find that the real-world evidence does not completely support the findings from simulated systems published in the literature. We also analyze filtering of BGP poisoning across types of ASes and ISP working groups. We explore the connectivity concerns when poisoning by reproducing a decade old experiment to uncover the current state of an Internet triple the size. We build predictive models for understanding an ASes' vulnerability to poisoning. Finally, an exhaustive measurement of an upper bound on the maximum path length of the Internet is presented, detailing how security research should react to ASes leveraging poisoned long paths. In total, our results and analysis expose the real-world impact of BGP poisoning on past and future security research.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext cf69e202-6fda-4224-a348-84cac6f3393aCited by top-tier papers1
Ask how each one uses itBuilds on10
- Hijacking Bitcoin: Routing Attacks on CryptocurrenciesMaria Apostolaki, Aviv Zohar, Laurent VanbeverS&P 2017 · 473 citations
- A Stealthier Partitioning Attack against Bitcoin Peer-to-Peer NetworkMuoi Tran, Inho Choi, Gi Jun Moon, Anh V. Vu et al.S&P 2020 · 126 citations
- Are We There Yet? On RPKI's Deployment and SecurityYossi Gilad, Avichai Cohen, Amir Herzberg, Michael Schapira et al.NDSS 2017 · 108 citations
- SABRE: Protecting Bitcoin against Routing AttacksMaria Apostolaki, Gian Marti, Jan Müller, Laurent VanbeverNDSS 2019 · 86 citations
- NetHide: Secure and Practical Network Topology ObfuscationRoland Meier, Petar Tsankov, Vincent Lenders, Laurent Vanbever et al.USENIX Security 2018 · 84 citations
Related papers
- ASRogue: Manipulating ASRank-Inferred AS RelationshipsYi Xu, Yihao Chen, Ke Xu, Qi Li et al.USENIX Security 2026
- Exploiting vulnerabilities at IXP route servers to perform stealth BGP hijacksGabby Rimlinger, Joaquim Pereira, Matthieu Gouel, Olivier Fourmaux et al.CCS 2026
- SoK: An Introspective Analysis of RPKI SecurityDonika Mirdita, Haya Schulmann, Michael WaidnerUSENIX Security 2025
- Crack in the Armor: Underlying Infrastructure Threats to RPKI Publication Point ReachabilityYunhao Liu, Jessie Hui Wang, Yuedong Xu, Zongpeng Li et al.NDSS 2026
- Keep Your Friends Close, but Your Routeservers Closer: Insights into RPKI Validation in the InternetTomas Hlavacek, Haya Schulmann, Niklas Vogel, Michael WaidnerUSENIX Security 2023
