Home > Research > Publications & Outputs > Mapping peering interconnections to a facility

Electronic data

  • conext15-final233

    Rights statement: © ACM, 2015. This is the author's version of the work. It is posted here for your personal use. Not for redistribution. The definitive Version of Record was published in CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies http://dx.doi.org/10.1145/2716281.2836122

    Accepted author manuscript, 1.29 MB, PDF document

    Available under license: CC BY-NC: Creative Commons Attribution-NonCommercial 4.0 International License

Links

Text available via DOI:

View graph of relations

Mapping peering interconnections to a facility

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Published

Standard

Mapping peering interconnections to a facility. / Giotsas, Vasileios; Smaragdakis, Georgios; Huffaker, Bradley et al.
CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies. New York: Association for Computing Machinery, Inc, 2015. 37.

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Harvard

Giotsas, V, Smaragdakis, G, Huffaker, B, Luckie, M & Claffy, KC 2015, Mapping peering interconnections to a facility. in CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies., 37, Association for Computing Machinery, Inc, New York, 11th ACM Conference on Emerging Networking Experiments and Technologies, CoNEXT 2015, Heidelberg, Germany, 1/12/15. https://doi.org/10.1145/2716281.2836122

APA

Giotsas, V., Smaragdakis, G., Huffaker, B., Luckie, M., & Claffy, K. C. (2015). Mapping peering interconnections to a facility. In CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies Article 37 Association for Computing Machinery, Inc. https://doi.org/10.1145/2716281.2836122

Vancouver

Giotsas V, Smaragdakis G, Huffaker B, Luckie M, Claffy KC. Mapping peering interconnections to a facility. In CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies. New York: Association for Computing Machinery, Inc. 2015. 37 doi: 10.1145/2716281.2836122

Author

Giotsas, Vasileios ; Smaragdakis, Georgios ; Huffaker, Bradley et al. / Mapping peering interconnections to a facility. CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies. New York : Association for Computing Machinery, Inc, 2015.

Bibtex

@inproceedings{86d161ba95674eceb59c54a7dd57a39b,
title = "Mapping peering interconnections to a facility",
abstract = "Annotating Internet interconnections with robust physical coordinates at the level of a building facilitates network management including interdomain troubleshooting, but also has practical value for helping to locate points of attacks, congestion, or instability on the Internet. But, like most other aspects of Internet interconnection, its geophysical locus is generally not public; the facility used for a given link must be inferred to construct a macroscopic map of peering. We develop a methodology, called constrained facility search, to infer the physical interconnection facility where an interconnection occurs among all possible candidates. We rely on publicly available data about the presence of networks at different facilities, and execute traceroute measurements from more than 8,500 available measurement servers scattered around the world to identify the technical approach used to establish an interconnection. A key insight of our method is that inference of the technical approach for an interconnection sufficiently constrains the number of candidate facilities such that it is often possible to identify the specific facility where a given interconnection occurs. Validation via private communication with operators confirms the accuracy of our method, which outperforms heuristics based on naming schemes and IP geolocation. Our study also reveals the multiple roles that routers play at interconnection facilities; in many cases the same router implements both private interconnections and public peerings, in some cases via multiple Internet exchange points. Our study also sheds light on peering engineering strategies used by different types of networks around the globe.",
keywords = "Interconnections, Internet mapping, Peering facilities",
author = "Vasileios Giotsas and Georgios Smaragdakis and Bradley Huffaker and Matthew Luckie and Claffy, {K. C.}",
note = "{\textcopyright} ACM, 2015. This is the author's version of the work. It is posted here for your personal use. Not for redistribution. The definitive Version of Record was published in CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies http://dx.doi.org/10.1145/2716281.2836122 ; 11th ACM Conference on Emerging Networking Experiments and Technologies, CoNEXT 2015 ; Conference date: 01-12-2015 Through 04-12-2015",
year = "2015",
month = dec,
day = "1",
doi = "10.1145/2716281.2836122",
language = "English",
booktitle = "CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies",
publisher = "Association for Computing Machinery, Inc",

}

RIS

TY - GEN

T1 - Mapping peering interconnections to a facility

AU - Giotsas, Vasileios

AU - Smaragdakis, Georgios

AU - Huffaker, Bradley

AU - Luckie, Matthew

AU - Claffy, K. C.

N1 - © ACM, 2015. This is the author's version of the work. It is posted here for your personal use. Not for redistribution. The definitive Version of Record was published in CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies http://dx.doi.org/10.1145/2716281.2836122

PY - 2015/12/1

Y1 - 2015/12/1

N2 - Annotating Internet interconnections with robust physical coordinates at the level of a building facilitates network management including interdomain troubleshooting, but also has practical value for helping to locate points of attacks, congestion, or instability on the Internet. But, like most other aspects of Internet interconnection, its geophysical locus is generally not public; the facility used for a given link must be inferred to construct a macroscopic map of peering. We develop a methodology, called constrained facility search, to infer the physical interconnection facility where an interconnection occurs among all possible candidates. We rely on publicly available data about the presence of networks at different facilities, and execute traceroute measurements from more than 8,500 available measurement servers scattered around the world to identify the technical approach used to establish an interconnection. A key insight of our method is that inference of the technical approach for an interconnection sufficiently constrains the number of candidate facilities such that it is often possible to identify the specific facility where a given interconnection occurs. Validation via private communication with operators confirms the accuracy of our method, which outperforms heuristics based on naming schemes and IP geolocation. Our study also reveals the multiple roles that routers play at interconnection facilities; in many cases the same router implements both private interconnections and public peerings, in some cases via multiple Internet exchange points. Our study also sheds light on peering engineering strategies used by different types of networks around the globe.

AB - Annotating Internet interconnections with robust physical coordinates at the level of a building facilitates network management including interdomain troubleshooting, but also has practical value for helping to locate points of attacks, congestion, or instability on the Internet. But, like most other aspects of Internet interconnection, its geophysical locus is generally not public; the facility used for a given link must be inferred to construct a macroscopic map of peering. We develop a methodology, called constrained facility search, to infer the physical interconnection facility where an interconnection occurs among all possible candidates. We rely on publicly available data about the presence of networks at different facilities, and execute traceroute measurements from more than 8,500 available measurement servers scattered around the world to identify the technical approach used to establish an interconnection. A key insight of our method is that inference of the technical approach for an interconnection sufficiently constrains the number of candidate facilities such that it is often possible to identify the specific facility where a given interconnection occurs. Validation via private communication with operators confirms the accuracy of our method, which outperforms heuristics based on naming schemes and IP geolocation. Our study also reveals the multiple roles that routers play at interconnection facilities; in many cases the same router implements both private interconnections and public peerings, in some cases via multiple Internet exchange points. Our study also sheds light on peering engineering strategies used by different types of networks around the globe.

KW - Interconnections

KW - Internet mapping

KW - Peering facilities

U2 - 10.1145/2716281.2836122

DO - 10.1145/2716281.2836122

M3 - Conference contribution/Paper

AN - SCOPUS:84995792524

BT - CoNEXT '15 Proceedings of the 11th ACM Conference on Emerging Networking Experiments and Technologies

PB - Association for Computing Machinery, Inc

CY - New York

T2 - 11th ACM Conference on Emerging Networking Experiments and Technologies, CoNEXT 2015

Y2 - 1 December 2015 through 4 December 2015

ER -